SUBSTRATE, AND PREPARATION METHOD THEREFOR AND USE OF SUBSTRATE
20230406983 ยท 2023-12-21
Inventors
Cpc classification
B01J20/3219
PERFORMING OPERATIONS; TRANSPORTING
B01L2200/12
PERFORMING OPERATIONS; TRANSPORTING
C03C17/3405
CHEMISTRY; METALLURGY
C08F283/06
CHEMISTRY; METALLURGY
B01L3/502707
PERFORMING OPERATIONS; TRANSPORTING
C08F222/14
CHEMISTRY; METALLURGY
C08F220/20
CHEMISTRY; METALLURGY
B01J20/3278
PERFORMING OPERATIONS; TRANSPORTING
C08F220/325
CHEMISTRY; METALLURGY
B01L2300/12
PERFORMING OPERATIONS; TRANSPORTING
C08F220/60
CHEMISTRY; METALLURGY
C08F283/065
CHEMISTRY; METALLURGY
C08F265/06
CHEMISTRY; METALLURGY
International classification
C08F283/06
CHEMISTRY; METALLURGY
B01L3/00
PERFORMING OPERATIONS; TRANSPORTING
C08F220/60
CHEMISTRY; METALLURGY
Abstract
The present invention relates to a substrate, and a preparation method therefor and the use thereof. What is referred to as the substrate has a surface, the surface comprising a polymer coating covalently attached thereto. The polymer coating comprises a polymer comprising a repeating unit A as represented by formula I and a repeating unit B as represented by formula II or formula III:
##STR00001##
wherein X is selected from O or NH, R.sub.01, R.sub.01 and R.sub.01 or are each independently selected from H or a C1-C3 alkyl, R.sub.0 is selected from a C1-C10 alkyl or (C1-C5 alkyl)-NHNHS-PEG4, and R.sub.0 comprises at least one R.sub.02 substitution, at least one R.sub.02 substitution each independently selected from epoxy, amino, or azido, R.sub.03, R.sub.03, R.sub.03, R.sub.03, R.sub.04, R.sub.04, R.sub.04, R.sub.05, R.sub.05 and R.sub.05 are each independently selected from H, a C1-C3 alkyl, acylamino or ester group, L.sub.1 is selected from a C1-C3 alkylene or C(O)R.sub.06C(O), and R.sub.06 is selected from PEG or alkyldiamine. The surface can load biomolecules at a higher density, can meet the evolving developments in terms of biomolecular preparation and/or analysis requirements, and has a good stability.
Claims
1. A substrate having a surface, wherein the surface comprises a polymer coating covalently linked thereto, wherein the polymer coating comprises a polymer comprising a repeating unit A of formula I and a repeating unit B of formula II or formula III: ##STR00060## wherein: X is selected from O and NH; R.sub.01, R.sub.01, and R.sub.01 are each independently selected from H and C1-C3 alkyl; R.sub.0 is selected from C1-C10 alkyl and (C1-C5 alkyl)-NHNHS-PEG4, and R.sub.0 comprises at least one R.sub.02 substituent, wherein at least one R.sub.02 substituent is each independently selected from epoxy, amino, and azido; R.sub.03, R.sub.03, R.sub.03, R.sub.03, R.sub.04, R.sub.04, R.sub.04, R.sub.05, R.sub.05, and R.sub.05 are each independently selected from H, C1-C3 alkyl, amido, and an ester group; L.sub.1 is selected from C1-C3 alkylene and C(O)R.sub.06C(O); and R.sub.06 is selected from PEG and alkyl diamine, provided that when R.sub.06 is PEG, the PEG has a molecular weight of 200-2000.
2. The substrate according to claim 1, wherein the polymer comprises a structure of formula III, formula IV, or formula V: ##STR00061##
3. The substrate according to claim 1, wherein the polymer coating comprises a polymer of formula VI or formula VII: ##STR00062## wherein: m is selected from integers in a range of 1-2000, n is selected from integers in a range of 1-3000, m1 and m2 are each independently selected from integers in a range of 1-2000, and n1 or n2 is selected from integers in a range of 1-1500 and n1 is equal to n2, provided that when R.sub.06 is from PEG, the PEG has a molecular weight of 200-2000.
4.-10. (canceled)
11. The substrate according to claim 1, wherein X is O.
12. (canceled)
13. The substrate according to claim 11, wherein the repeating unit A is selected from one of the following structures: ##STR00063##
14. The substrate according to claim 11, wherein the repeating unit B is selected from one of the following structures: ##STR00064## wherein the PEG has a molecular weight of 200-2000.
15. (canceled)
16. The substrate according to claim 14, wherein the polymer coating comprises one of the following polymers: ##STR00065## ##STR00066## ##STR00067## wherein: p is selected from integers in a range of 1-3000, p1 and p2 are each independently selected from integers in a range of 1-1300 and p1 is equal to p2, q, q1, and q2 are each independently selected from integers in a range of 1-2000, and the PEG has a molecular weight of 200-2000.
17. The substrate according to claim 1, wherein X is NH.
18. The substrate according to claim 17, wherein the repeating unit B is as shown in formula III.
19. (canceled)
20. The substrate according to claim 17, wherein the repeating unit A is selected from one of the following structures: ##STR00068##
21. The substrate according to claim 18, wherein the repeating unit B is selected from one of the following structures: ##STR00069## wherein the PEG has a molecular weight of 200-2000.
22. (canceled)
23. The substrate according to claim 21, wherein the polymer coating comprises one of the following polymers: ##STR00070## ##STR00071## wherein: p3 and p4 are each independently selected from integers in a range of 1-1300 and p3 is equal to p4, q3 and q4 are each independently selected from integers in a range of 1-500, and q5 and q6 are each independently selected from integers in a range of 1-1500.
24. The substrate according to claim 17, wherein the repeating unit B is as shown in formula II.
25. The substrate according to claim 24, wherein the repeating unit B is selected from one of the following structures: ##STR00072##
26. (canceled)
27. The substrate according to claim 24, wherein the repeating unit A is ##STR00073##
28. (canceled)
29. The substrate according to claim 27, wherein the polymer coating comprises one of the following polymers: ##STR00074## wherein: p7 is selected from integers in a range of 1-3000, and q7 is selected from integers in a range of 1-500.
30-33. (canceled)
34. A method for preparing a substrate having a polymer coating on a surface thereof, comprising: making a polymer in contact with the surface to allow the polymer to be linked to the surface, wherein the polymer comprises a repeating unit A of formula I and a repeating unit B of formula II or formula III: ##STR00075## wherein: X is selected from O and NH; R.sub.01, R.sub.01, and R.sub.01 are each independently selected from H and C1-C3 alkyl; R.sub.0 is selected from C1-C10 alkyl and (C1-C5 alkyl)-NHNHS-PEG4, and R.sub.0 comprises at least one R.sub.02 substituent, wherein at least one R.sub.02 substituent is each independently selected from epoxy, amino, and azido; R.sub.03, R.sub.03, R.sub.03, R.sub.03, R.sub.04, R.sub.04, R.sub.04, R.sub.05, R.sub.05, and R.sub.05 are each independently selected from H, C1-C3 alkyl, amido, and an ester group; L.sub.1 is selected from C1-C3 alkylene and C(O)R.sub.06C(O); and R.sub.06 is selected from PEG and alkyl diamine, provided that when R.sub.06 is PEG, the PEG has a molecular weight of 200-2000.
35-58.
59. The method according to claim 34, further comprising: modifying the surface to provide the surface with at least an active group selected from at least one of amino, epoxy, alkynyl, cyano, vinyl, and propenyl; and making the polymer in contact with the surface to allow the polymer to be linked to the surface by covalently binding to the active group.
60-62. (canceled)
63. The method according to claim 59, wherein the surface is treated with a silane coupling agent to provide the surface with the active group, wherein the silane coupling agent is selected from at least one of 3-aminopropyltrimethoxysilane, 2-propynyl[3-(triethoxysilyl)propyl]carbamate, 4-(triethoxy)silylbutyronitrile, and -(2,3-epoxypropoxy)propyltrimethoxysilane.
64.-70. (canceled)
71. A method for capturing and/or detecting a biomolecule comprising: contacting the biomolecule with a substrate having a surface, the surface comprising a polymer coating covalently linked thereto, wherein the polymer coating comprises a polymer comprising a repeating unit A of formula I and a repeating unit B of formula II or formula III: ##STR00076## wherein: X is selected from O and NH; R.sub.01, R.sub.01, and R.sub.01 are each independently selected from H and C1-C3 alkyl; R.sub.0 is selected from C1-C10 alkyl and (C1-C5 alkyl)-NHNHS-PEG4, and R.sub.0 comprises at least one R.sub.02 substituent, wherein at least one R.sub.02 substituent is each independently selected from epoxy, amino, and azido; R.sub.03, R.sub.03, R.sub.03, R.sub.03, R.sub.04, R.sub.04, R.sub.04, R.sub.05, R.sub.05, and R.sub.05 are each independently selected from H, C1-C3 alkyl, amido, and an ester group; L.sub.1 is selected from C1-C3 alkylene and C(O)R.sub.06C(O); and R.sub.06 is selected from PEG and alkyl diamine, and provided that when R.sub.06 is PEG, the PEG has a molecular weight of 200-2000.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0025] The above and/or additional aspects and advantages of the embodiments of the present disclosure will become apparent and easily understood from the description of the embodiments in reference to the following drawings, among which:
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
[0035]
[0036]
[0037]
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[0039]
[0040]
[0041]
[0042]
[0043]
[0044]
DETAILED DESCRIPTION
[0045] The substrate/chip of the present disclosure, the method for preparing the same, and the use of the same are described in further details below with reference to specific examples. The embodiments described below with reference to the drawings are exemplary and are merely intended to explain the present disclosure rather than be construed as limiting the present disclosure.
[0046] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by those skilled in the art to which the present disclosure belongs. Unless otherwise specified, reagents, detection instruments, etc., in the examples can be self-prepared or are commercially available. As used herein, the term and/or includes any and all combinations of one or more of the associated listed items. In addition, since most of the specific data referred to herein are statistically significant or difficult to determine precisely, unless otherwise specified, any numerical value expressed in a precise manner is meant to be a range, e.g., an interval containing plus or minus 10% of the numerical value, which will not be repeated herein.
[0047] The chip used herein includes a substrate having a polymer coating on a surface thereof, and also includes a substrate having a polymer coating linked with a biomolecule. The material of the substrate is not particularly limited, and is, for example, at least one selected from glass, silicon wafer, plastic, gel, and nylon film. Unless otherwise specified, the substrate, chip, and biochip are used interchangeably.
[0048] Linking as used herein should be comprehended in its broad sense. For example, it may be direct connection or indirect connection through an intermediate, and it may be chemical ligation or physical connection. Unless otherwise specifically defined, in the description herein of a connection relationship involving compounds, biomolecules, functional groups, groups, etc., linking generally refers to chemical ligation, such as binding through a covalent bond, adsorption on the basis of Van der Waals' force or electrostatic interaction, or the like. For those skilled in the art, the specific meanings of the above terms herein can be understood according to specific conditions.
[0049] The polymer as used herein refers to a polymer compound generally having a molecular weight greater than 1000, which is sometimes referred to as a high polymer. The polymer herein is a polymer formed by a plurality of monomer molecules undergoing polymerization, e.g., addition polymerization.
[0050] The functional group and active group as referred to herein are used interchangeably to refer to groups that impart a property or properties to a compound.
[0051] Grafted to . . . via . . . or modified with . . . as used herein may refer to direct grafting to or modification with an object, or may refer to indirect grafting to or modification with the object, for example, via other transition groups or structures. Unless otherwise specifically stated, the linking herein includes grafting, immobilization, binding, and the like; also, grafting, immobilization, binding and covalent linking/binding (linking via a covalent bond) are used interchangeably herein.
[0052] The term alkyl refers to a saturated hydrocarbon containing a primary (normal) carbon atom, a secondary carbon atom, a tertiary carbon atom, a quaternary carbon atom, or a combination thereof. For example, C1-C10 alkyl refers to alkyl groups containing 1-10 carbon atoms, which may be independently C.sub.1 alkyl, C.sub.2 alkyl, C.sub.3 alkyl, C.sub.4 alkyl, C.sub.5 alkyl, C.sub.6 alkyl, C.sub.7 alkyl, C.sub.8 alkyl, C.sub.9 alkyl, or C.sub.10 alkyl at each occurrence. The alkyl groups include, but are not limited to: methyl (Me, CH.sub.3), ethyl (Et, CH.sub.2CH.sub.3), 1-propyl (n-Pr, n-propyl, CH.sub.2CH.sub.2CH.sub.3), 2-propyl (i-Pr, i-propyl, CH(CH.sub.3).sub.2), 1-butyl (n-Bu, n-butyl, CH.sub.2CH.sub.2CH.sub.2CH.sub.3), 2-methyl-1-propyl (i-Bu, i-butyl, CH.sub.2CH(CH.sub.3).sub.2), 2-butyl (s-Bu, s-butyl, CH(CH.sub.3)CH.sub.2CH.sub.3), 2-methyl-2-propyl (t-Bu, t-butyl, C(CH.sub.3).sub.3), 1-pentyl (n-pentyl, CH.sub.2CH.sub.2CH.sub.2CH.sub.2CH.sub.3), 2-pentyl (CH(CH.sub.3)CH.sub.2CH.sub.2CH.sub.3), 3-pentyl (CH(CH.sub.2CH.sub.3).sub.2), 2-methyl-2-butyl (C(CH.sub.3).sub.2CH.sub.2CH.sub.3), 3-methyl-2-butyl (CH(CH.sub.3)CH(CH.sub.3).sub.2), 3-methyl-1-butyl (CH.sub.2CH.sub.2CH(CH.sub.3).sub.2), 2-methyl-1-butyl(-CH.sub.2CH(CH.sub.3)CH.sub.2CH.sub.3), 1-hexyl (CH.sub.2CH.sub.2CH.sub.2CH.sub.2CH.sub.2CH.sub.3), 2-hexyl (CH(CH.sub.3)CH.sub.2CH.sub.2CH.sub.2CH.sub.3), 3-hexyl (CH(CH.sub.2CH.sub.3)(CH.sub.2CH.sub.2CH.sub.3)), 2-methyl-2-pentyl (C(CH.sub.3).sub.2CH.sub.2CH.sub.2CH.sub.3), 3-methyl-2-pentyl (CH(CH.sub.3)CH(CH.sub.3)CH.sub.2CH.sub.3), 4-methyl-2-pentyl (CH(CH.sub.3)CH.sub.2CH(CH.sub.3).sub.2), 3-methyl-3-pentyl (C(CH.sub.3)(CH.sub.2CH.sub.3).sub.2), 2-methyl-3-pentyl (CH(CH.sub.2CH.sub.3)CH(CH.sub.3).sub.2), 2,3-dimethyl-2-butyl (C(CH.sub.3).sub.2CH(CH.sub.3).sub.2), 3,3-dimethyl-2-butyl (CH(CH.sub.3)C(CH.sub.3).sub.3, and octyl ((CH.sub.2).sub.7CH.sub.3).
[0053] Epoxy refers to groups containing the structure XCH(O)CHX, wherein each X is independently H or alkyl. The epoxy groups include, but are not limited to, CH(O)CH.sub.2 and CH(O)CH(alkyl).
[0054] Amino refers to derivatives of ammonia that are groups containing the structure N(X).sub.2, wherein each X is independently H or alkyl. The amino groups include, but are not limited to, NH.sub.2, N(alkyl).sub.2, NH(alkyl), N(cycloalkyl).sub.2, NH(cycloalkyl), N(heterocyclyl).sub.2, NH(heterocyclyl), N(aryl).sub.2, NH(aryl), N(alkyl)(aryl), N(alkyl)(heterocyclyl), N(cycloalkyl)(heterocyclyl), N(aryl)(heteroaryl), and N(alkyl)(heteroaryl).
[0055] Azido or azide refers to N.sub.3.
[0056] Ester group refers to groups containing the structure C(O)OX, wherein X is alkyl. The ester groups include, but are not limited to, C(O)OCH.sub.3 and C(O)OCH.sub.2CH.sub.3.
[0057] Amido refers to groups containing the structure C(O)N(X).sub.2, wherein each X is independently H or alkyl. The amide groups include, but are not limited to, C(O)NH.sub.2, C(O)NH(alkyl), and C(O)N(alkyl).sub.2.
[0058] The biomolecule or biological component as used herein includes a nucleic acid and/or a protein. The nucleic acid may be DNA, cDNA, RNA or an RNA-DNA complex, and may be double-stranded or single-stranded.
[0059] The probe/primer as used herein is a nucleic acid molecule of known sequence that can be used to capture a target nucleic acid sequence or as a primer for amplification of the target nucleic acid sequence. It may be DNA and/or RNA, etc., and is generally an oligonucleotide strand with a length of less than 150 nt. By structurally and/or chemically treating the surface of the substrate, the probes linked to the surface can be made to be randomly or regularly distributed.
[0060] The specific embodiments of the present disclosure provide a substrate having a surface. The surface contains a polymer coating covalently linked thereto. The polymer coating contains a polymer including a repeating unit A of formula I and a repeating unit B of formula II or formula III:
##STR00004##
wherein, X is selected from O and NH; R.sub.01, R.sub.01, and R.sub.01 are each independently selected from H and C1-C3 alkyl; R.sub.0 is selected from C1-C10 alkyl and (C1-C5 alkyl)-NHNHS-PEG4, and R.sub.0 contains at least one R.sub.02 substituent, wherein at least one R.sub.02 substituent is independently selected from epoxy, amino, and azido, and the PEG4 here indicates that n in HO(CH.sub.2CH.sub.2O)nH is 4; R.sub.03, R.sub.03, R.sub.03, R.sub.03, R.sub.04, R.sub.04, R.sub.04, R.sub.05, R.sub.05, and R.sub.05 are each independently selected from H, C1-C3 alkyl, amido, and an ester group; L.sub.1 is selected from C1-C3 alkylene and C(O)R.sub.06C(O); and R.sub.06 is selected from PEG and alkyl diamine.
[0061] In a certain example, R.sub.06 is selected from PEG, which has a molecular weight of 200-2000, preferably 500-1000.
[0062] In certain examples, the polymer contains a structure of formula III, formula IV, or formula V:
##STR00005##
[0063] In certain examples, the polymer coating contains a polymer of formula VI or formula VII:
##STR00006##
wherein, m is selected from integers in the range of 1-2000, n is selected from integers in a range of 1-3000, m1 and m2 are each independently selected from integers in a range of 1-2000, and n1 and n2 are selected from integers in a range of 1-1500 and n1 is equal to n2, and in the case that R.sub.06 is selected from PEG, the PEG has a molecular weight of less than 1000, preferably 500-1000.
[0064] In certain examples, the polymer coating contains the polymer of formula VI, wherein a ratio of m to n is 1:1-1:30, preferably 1:2-1:30, and more preferably 1:10-1:20.
[0065] In certain examples, the polymer coating contains the polymer of formula VII, wherein a ratio of the sum of m1 and m2 to n1 or n2 is 1:1-1:30, preferably 1:2-1:30, and more preferably, 1:10-1:20. In certain examples, the polymer has a molecular weight of 1-200,000. The linking of polymers having molecular weights in this range to the surface can provide the surface with desired and stable and controllable properties. Regarding the effect of polymer molecular weight on surface properties, for high polymers in this molecular weight range formed by polymerization in the same monomer ratio, based on the knowledge of high polymers and the morphology/structure of the high polymers on the surface and from test experience, the inventor speculates that a polymer with a relatively high molecular weight, e.g., 180,000, will result in the surface with superior properties, e.g., a larger number of functional groups, a more uniform distribution, etc., compared with a polymer with a relatively low molecular weight, e.g., 20,000. However, surprisingly, from the test in which two surfaces having polymer coatings of these two molecular weights, respectively, are linked to the same probe, it is found that the properties of the surfaces having polymer coatings of these two molecular weights are comparable, with no significant difference.
[0066] In certain examples, the polymer coating is linked to the surface by covalently binding to an active group on the surface. The active group is selected from at least one of amino, epoxy, alkynyl, cyano, vinyl, and propenyl.
[0067] In certain examples, the active group is an amino group, and the polymer contains an epoxy group. At least a portion of the amino group is subjected to a reaction with at least a portion of the epoxy group on the polymer to allow the polymer to be covalently bound to the surface through the active group. In certain examples, the active group is an epoxy group and the polymer contains NH.sub.2. At least a portion of the epoxy group is subjected to a reaction with at least a portion of NH.sub.2 on the polymer to allow the polymer to be covalently bound to the surface through the active group.
[0068] In certain examples, the active group is one of alkynyl, cyano, vinyl, and propenyl, and the polymer contains N.sub.3. At least a portion of the designated active group is subjected to a reaction with at least a portion of N.sub.3 on the polymer to allow the polymer to be covalently bound to the surface through the active group.
[0069] In certain examples, X is selected from O.
[0070] Specifically, in some examples, R.sub.01, R.sub.01, and R.sub.01 are each independently selected from H and methyl, and R.sub.0 is selected from C1-C3 alkyl; and/or R.sub.03, R.sub.03, R.sub.03, R.sub.03, R.sub.04, R.sub.04, R.sub.04, R.sub.05, R.sub.05, and R.sub.05 are each independently selected from H, methyl, C(O)NH.sub.2, and C(O)OCH.sub.3, and L.sub.1 is selected from C(O)PEG-C(O) and C(O)NHCH.sub.2NHC(O).
[0071] In certain examples, the repeating unit A is selected from one of the following structures:
##STR00007##
[0072] In some examples, the repeating unit B is selected from one of the following structures:
##STR00008##
wherein the PEG has a molecular weight of 200-2000, preferably 500-1000.
[0073] In some examples, the polymer contains one of the following structures:
##STR00009## ##STR00010## ##STR00011##
[0074] In some examples, the polymer coating contains one of the following polymers:
##STR00012## ##STR00013## ##STR00014##
wherein, p is selected from integers in a range of 1-3000, p1 and p2 are each independently selected from integers in a range of 1-1300 and p1 is equal to p2, and q, q1, and q2 are each independently selected from integers in a range of 1-2000.
[0075] In certain other examples, X is selected from NH.
[0076] Specifically, in certain examples, the repeating unit B is as shown in formula III.
[0077] In some examples, R.sub.01, R.sub.01, and R.sub.01 are each independently selected from H and methyl, and R.sub.0 is selected from C1-C3 alkyl and (C1-C5 alkyl)-NHNHS-PEG4; and/or R.sub.04, R.sub.04, R.sub.04, R.sub.05, R.sub.05, and R.sub.05 are each independently selected from H, methyl, C(O)NH.sub.2 or C(O)OCH.sub.3, and L.sub.1 is selected from C(O)PEG-C(O) and C(O)NHCH.sub.2NHC(O), in the case that L.sub.1 is selected from C(O)-PEG-C(O), the PEG has a molecular weight of 200-2000, preferably 500-1000.
[0078] In certain examples, the repeating unit A is selected from one of the following structures:
##STR00015##
The PEG4 here indicates HO(CH.sub.2CH.sub.2O)nH, wherein n in HO(CH.sub.2CH.sub.2O)nH is 4.
[0079] In some examples, the repeating unit B is selected from one of the following structures:
##STR00016##
[0080] In some examples, the polymer contains one of the following structures:
##STR00017## ##STR00018##
[0081] In some examples, the polymer coating contains one of the following polymers:
##STR00019## ##STR00020##
wherein, p3 and p4 are each independently selected from integers in a range of 1-1300 and p3 is equal to p4, q3 and q4 are each independently selected from integers in a range of 1-500, and q5 and q6 are each independently selected from integers in a range of 1-1500.
[0082] In some other examples, the repeating unit B is as shown in formula II.
[0083] Specifically, in some examples, the repeating unit B is selected from one of the following structures:
##STR00021##
[0084] In some examples, R.sub.0 is selected from (C1-C5 alkyl)-NHNHS-PEG4-N.sub.3. The PEG4 here indicates HO(CH.sub.2CH.sub.2O)nH, wherein, that n in HO(CH.sub.2CH.sub.2O)nH is 4.
[0085] In some examples, the repeating unit A is
##STR00022##
[0086] In some examples, the polymer includes one of the following structures:
##STR00023##
[0087] In some examples, the polymer coating includes one of the following polymers:
##STR00024##
wherein, p7 is selected from integers in a range of 1-3000, and q7 is selected from integers in a range of 1-500.
[0088] In certain examples, a monomer A of formula VIII corresponding to the repeating unit A and a monomer B of formula IX or formula X corresponding to the repeating unit B are subjected to a polymerization reaction to obtain the polymer, wherein the polymerization reaction is performed in the presence of an initiator,
##STR00025##
wherein, [0089] X is selected from O and NH; R.sub.01, R.sub.01, and R.sub.01 are each independently selected from H and C1-C3 alkyl; R.sub.0 is selected from C1-C10 alkyl and (C1-C5 alkyl)-NHNHS-PEG4, and R.sub.0 contains at least one R.sub.02 substituent, wherein at least one R.sub.02 substituent is independently selected from epoxy, amino, and azido, and the PEG4 here indicates HO(CH.sub.2CH.sub.2O)nH, wherein, n in HO(CH.sub.2CH.sub.2O)nH is 4; R.sub.03, R.sub.03, R.sub.03, R.sub.03, R.sub.04, R.sub.04, R.sub.04, R.sub.05, R.sub.05, and R.sub.05 are each independently selected from H, C1-C3 alkyl, amido, and an ester group; L.sub.1 is selected from C1-C3 alkylene and C(O)R.sub.06C(O); and R.sub.06 is selected from PEG and alkyl diamine.
[0090] In certain specific examples, in the case that R.sub.06 is PEG, the PEG has a molecular weight of 200-2000, preferably 500-1000.
[0091] In certain examples, the molar ratio of the monomer A and the monomer B in the polymerization reaction is selected from a numerical value in a range of 1:1-1:30, preferably a numerical value in a range of 1:2-1:30, and more preferably a numerical value in a range of 1:10-1:20.
[0092] In certain examples, the surface is further linked with a biomolecule, which is linked to the surface by covalently binding to the polymer.
[0093] In certain examples, the biomolecule is selected from at least one of a protein and a nucleic acid. In a certain example, the biomolecule is, for example, a probe that has a terminus with a group capable of binding to a polymer so as to be immobilized to a surface; further, the probe may hybridize to a target nucleic acid molecule, and the biomolecule may further include a target nucleic acid molecule or a probe-target nucleic acid molecule complex.
[0094] Another specific embodiment of the present disclosure provides a method for preparing a substrate having a polymer coating on a surface thereof. The method may be used for the preparation of the substrate according to any one of the above embodiments or examples. The method includes: making a polymer in contact with the surface to allow the polymer to be linked to the surface. The polymer contains a repeating unit A of formula I and a repeating unit B of formula II or formula III:
##STR00026##
wherein, X is selected from O and NH; R.sub.01, R.sub.01, and R.sub.01 are each independently selected from H and C1-C3 alkyl; R.sub.0 is selected from C1-C10 alkyl and (C1-C5 alkyl)-NHNHS-PEG4, and R.sub.0 contains at least one R.sub.02 substituent, wherein at least one R.sub.02 substituent is independently selected from epoxy, amino, and azido; R.sub.03, R.sub.03, R.sub.03, R.sub.03, R.sub.04, R.sub.04, R.sub.04, R.sub.05, R.sub.05, and R.sub.05 are each independently selected from H, C1-C.sub.3 alkyl, amido, and an ester group; L.sub.1 is selected from C1-C.sub.3 alkylene and C(O)R.sub.06C(O); and R.sub.06 is selected from PEG and alkyl diamine.
[0095] It will be understood that the substrate according to any one of the above examples has technical features and advantages, and is equally suitable for the method according to this embodiment.
[0096] For example, in certain examples, the polymer contains a structure of formula III, formula IV, or formula V:
##STR00027##
[0097] In certain examples, the polymer coating contains a polymer of formula VI or formula VII:
##STR00028##
[0098] wherein, m is selected from integers in a range of 1-2000, n is selected from integers in a range of 1-3000, m1 and m2 are each independently selected from integers in a range of 1-2000, and n1 and n2 are selected from integers in a range of 1-1500 and n1 is equal to n2, and in the case that R.sub.06 is selected from PEG, the PEG has a molecular weight of 200-2000, preferably 500-1000.
[0099] In certain examples, the polymer coating contains the polymer of formula VI, wherein a ratio of m to n is 1:1-1:30, preferably 1:2-1:30, and more preferably 1:10-1:20.
[0100] In certain examples, the polymer coating contains the polymer of formula VII, wherein a ratio of the sum of m1 and m2 to n1 or n2 is 1:1-1:30, preferably 1:2-1:30, and more preferably, 1:10-1:20. In certain examples, the polymer has a molecular weight of 1-200,000.
[0101] Specifically, in some examples, X is selected from O.
[0102] In some examples, R.sub.01, R.sub.01, and R.sub.01 are each independently selected from H and methyl, and R.sub.0 is selected from C1-C3 alkyl; and/or R.sub.03, R.sub.03, R.sub.03, R.sub.03, R.sub.04, R.sub.04, R.sub.04, R.sub.05, R.sub.05, and R.sub.05 are each independently selected from H, methyl, C(O)NH.sub.2, and C(O)OCH.sub.3, and L.sub.1 is selected from C(O)-PEG-C(O) and C(O)NHCH.sub.2NHC(O).
[0103] In some examples, the repeating unit A is selected from one of the following structures:
##STR00029##
[0104] In some examples, the repeating unit B is selected from one of the following structures:
##STR00030##
[0105] wherein the PEG has a molecular weight of 200-2000, e.g., no more than 1000, preferably 500-1000.
[0106] In some examples, the polymer contains one of the following structures:
##STR00031## ##STR00032##
[0107] In some examples, the polymer contains one of the following polymers:
##STR00033## ##STR00034##
wherein, p is selected from integers in a range of 1-3000, p1 and p2 are each independently selected from integers in a range of 1-1300 and p1 is equal to p2, and q, q1, and q2 are each independently selected from integers in a range of 1-2000.
[0108] In some other examples, X is selected from NH. Specifically, the repeating unit B is as shown in formula III.
[0109] More specifically, in certain examples, R.sub.01, R.sub.01, and R.sub.01 are each independently selected from H and methyl, and R.sub.0 is selected from C1-C3 alkyl and (C1-C5 alkyl)-NHNHS-PEG4; and/or R.sub.04, R.sub.04, R.sub.04, R.sub.05, R.sub.05, and R.sub.05 are each independently selected from H, methyl, C(O)NH.sub.2 and C(O)OCH.sub.3, and L.sub.1 is selected from C(O)PEG-C(O) and C(O)NHCH.sub.2NHC(O).
[0110] In certain examples, the repeating unit A is selected from one of the following structures:
##STR00035##
[0111] In certain examples, the repeating unit B is selected from one of the following structures:
##STR00036##
[0112] In certain examples, the polymer contains one of the following structures:
##STR00037## ##STR00038##
[0113] In certain examples, the polymer contains one of the following polymers:
##STR00039## ##STR00040##
wherein, p3 and p4 are each independently selected from integers in a range of 1-1300 and p3 is equal to p4, q3 and q4 are each independently selected from integers in a range of 1-500, and q5 and q6 are each independently selected from integers in a range of 1-1500.
[0114] Specifically, in some other examples, the repeating unit B is as shown in formula II.
[0115] For example, the repeating unit B is selected from one of the following structures:
##STR00041##
[0116] In certain examples, R.sub.0 is selected from (C1-C5 alkyl)-NHNHS-PEG4-N.sub.3.
[0117] In certain examples, the repeating unit A is
##STR00042##
[0118] In certain examples, the polymer includes one of the following structures:
##STR00043##
[0119] In certain examples, the polymer includes one of the following polymers:
##STR00044##
wherein, p7 is selected from integers in a range of 1-3000, and q7 is selected from integers in a range of 1-500.
[0120] In some other examples, the method includes: modifying the surface to provide the surface with an active group selected from at least one of amino, epoxy, alkynyl, cyano, vinyl, and propenyl; and making a polymer in contact with the surface to allow the polymer to be linked to the surface by covalently binding to the polymer.
[0121] Specifically, in one example, the active group is an amino group and the polymer contains an epoxy group. At least a portion of the epoxy group is subjected to a reaction with at least a portion of the amino group to allow the polymer to be linked to the surface.
[0122] In another example, the active group is an epoxy group, and the polymer contains an amino group. At least a portion of the amino group is subjected to a reaction with at least a portion of the epoxy group to allow the polymer to be linked to the surface.
[0123] In still other examples, the active group is selected from one of alkynyl, cyano, vinyl, and propenyl, and the polymer contains N.sub.3. At least a portion of the N.sub.3 is subjected to a reaction with at least a portion of the active group to allow the polymer to be linked to the surface.
[0124] In certain examples, the surface is treated with a silane coupling agent to provide the surface with the active group. The silane coupling agent is selected from at least one of 3-aminopropyltrimethoxysilane, 2-propynyl[3-(triethoxysilyl)propyl]carbamate, 4-(triethoxy)silylbutyronitrile, and -(2,3-epoxypropoxy)propyltrimethoxysilane.
[0125] In certain examples, a reaction is performed at 40-50 C. for 1-8 h to allow the polymer to be linked to the surface by covalently binding to the active group.
[0126] In certain examples, the method further includes: allowing the biomolecule to be linked to the surface by covalently binding to the polymer.
[0127] In certain examples, the biomolecule is selected from at least one of a protein and a nucleic acid.
[0128] In certain examples, a reaction is performed at 50-60 C. for 0.5-5 h to allow the biomolecule to be covalently bound to the polymer.
[0129] In certain examples, the polymer contains at least an epoxy group, and the biomolecule has an amino modification on at least one terminus.
[0130] In certain examples, the polymer contains at least an amino group, and the biomolecule has NHS on at least one terminus.
[0131] In certain examples, the polymer contains N.sub.3, and the biomolecule has DBCO on at least one terminus.
[0132] The specific embodiments of the present disclosure further provide use of the substrate according to any one of the above embodiments or examples in biomolecule capture and/or detection. The application or use is, for example, nucleic acid detection, and more specifically, for example, sequencing.
[0133] One embodiment of the present disclosure provides a polymer. The polymer contains a repeating unit A and a repeating unit B. The repeating unit A has the structural feature as shown below:
##STR00045##
wherein X is selected from O and NH; R.sub.01, R.sub.01, and R.sub.01 are each independently selected from H and C1-C3 alkyl; and R.sub.0 is selected from C1-C10 alkyl and (C1-C5 alkyl)-NHNHS-PEG4, and R.sub.0 is substituted with at least one R.sub.02, wherein R.sub.02 are each independently selected from epoxy, amino, and azido. The repeating unit B has the structural feature as shown below:
##STR00046##
wherein R.sub.03, R.sub.03, R.sub.03, R.sub.03, R.sub.04, R.sub.04, R.sub.04, R.sub.05, R.sub.05, and R.sub.05 are each independently selected from H, C1-C3 alkyl, amido, and an ester group; L.sub.1 is selected from C1-C3 alkylene and C(O)R.sub.06C(O); and R.sub.06 is selected from PEG and alkyl diamine.
[0134] In one of the specific embodiments, X is selected from O.
[0135] Further, R.sub.01, R.sub.01, and R.sub.01 are each independently selected from H and methyl; and R.sub.0 is selected from C1-C3 alkyl.
[0136] Further, R.sub.03, R.sub.03, R.sub.03, R.sub.03, R.sub.04, R.sub.04, R.sub.04, R.sub.05, R.sub.05, and R.sub.05 are each independently selected from H, methyl, C(O)NH.sub.2, and C(O)OCH.sub.3; and L.sub.1 is selected from C(O)PEG-C(O) and C(O)NHCH.sub.2NHC(O).
[0137] Specifically, the repeating unit A is selected from one of repeating units as shown below:
##STR00047##
[0138] Specifically, the repeating unit B is selected from one of repeating units as shown below:
##STR00048##
[0139] In another specific embodiment, X is selected from NH.
[0140] In some embodiments, the repeating unit B has the structural feature as shown below:
##STR00049##
wherein R.sub.04, R.sub.04, R.sub.04, R.sub.05, R.sub.05, and R.sub.05 are each independently selected from H, C1-C3 alkyl, amido, and an ester group; L.sub.1 is selected from C1-C3 alkylene and C(O)R.sub.06C(O); and R.sub.06 is selected from PEG and alkyl diamine.
[0141] Still further, R.sub.01, R.sub.01, and R.sub.01 are each independently selected from H and methyl; and R.sub.0 is selected from C1-C3 alkyl and (C1-C5 alkyl)-NHNHS-PEG4.
[0142] Still further, R.sub.04, R.sub.04, R.sub.04, R.sub.05, R.sub.05, and R.sub.05 are each independently selected from H, methyl, C(O)NH.sub.2 and C(O)OCH.sub.3; and L.sub.1 is selected from C(O)PEG-C(O) and C(O)NHCH.sub.2NHC(O).
[0143] Specifically, the repeating unit A is selected from one of repeating units as shown below:
##STR00050##
[0144] Specifically, the repeating unit B is selected from one of repeating units as shown below:
##STR00051##
[0145] Additionally, further, the repeating unit B has the structural feature as shown below:
##STR00052##
wherein R.sub.03, R.sub.03, R.sub.03, and R.sub.03 are each independently selected from H, C1-C3 alkyl, amido, and an ester group.
[0146] Specifically, the repeating unit B is one of the repeating units as shown below:
##STR00053##
[0147] Still further, R.sub.0 is selected from (C1-C5 alkyl)-NHNHS-PEG4-N.sub.3.
[0148] Specifically, the repeating unit A is
##STR00054##
[0149] In addition, in one of the specific embodiments, the polymer has a molecular weight of 10,000-120,000.
[0150] The embodiments of the present disclosure further provide a method for preparing the above polymer, which includes: subjecting a monomer A and a monomer B to a copolymerization reaction to prepare the polymer. The monomer A forms the repeating unit A and the monomer B forms the repeating unit B.
[0151] In one of the specific embodiments, the molar ratio of the monomer A to the monomer B is 1:(1-30). Specifically, the molar ratio of the monomer A to the monomer B is 1:1, 1:3, 1:5, 1:8, 1:10, 1:12, 1:15, 1:20, 1:25, or 1:30.
[0152] In one of the specific embodiments, the copolymerization reaction refers to a polymerization reaction of the monomer A and the monomer B performed at 30-60 C. (reaction temperature) under the initiation of an initiator. Specifically, the reaction temperature may be the following specific temperature value: 30 C., 35 C., 36 C., 37 C., 38 C., 40 C., 41 C., 42 C., 43 C., 45 C., 50 C., 52 C., 54 C., 55 C., 56 C., 58 C., or 60 C.
[0153] In one of the specific embodiments, the initiator is selected from at least one of azobisisobutyronitrile (AIBN) and potassium persulfate (KPS).
[0154] In one of the specific embodiments, the polymerization reaction is stopped by oxygen.
[0155] In one of the specific embodiments, the polymer is prepared by extracting the product of the polymerization reaction with methanol and drying the product.
[0156] The embodiments of the present disclosure further provide a chip including a substrate and a polymer grafted to a surface of the substrate. The polymer is a polymer as described above.
[0157] In one of the specific embodiments, the substrate is modified with at least an active group, and the polymer is grafted to the surface of the substrate through the active group. The active group is selected from at least one of amino, epoxy, alkynyl, cyano, vinyl, and propenyl.
[0158] In one of the specific embodiments, the biochip further includes a biological component grafted to the polymer. As such, the biochip is used for further biological reactions and applications. Specifically, the biological component is selected from at least one of an amino acid sequence and a nucleotide sequence. Further, the amino acid sequence contains at least one of protein, oligopeptide, polypeptide, or the like; and the nucleotide sequence contains at least one of oligonucleotide sequence, polynucleotide sequence, or the like.
[0159] The embodiments of the present disclosure further provide a preparation method for preparing a chip, which includes: obtaining a substrate, and grafting a polymer to a surface of the substrate. The polymer is selected from any one of the above examples. The preparation method for the chip does not need strict control of reaction conditions, and has a simple and easily-controlled process, which is beneficial to popularization and application of the chip.
[0160] In one of the specific embodiments, the active group is grafted to the surface of the substrate, then the polymer is grafted to the surface of the substrate through the active group. The active group is selected from at least one of amino, epoxy, alkynyl, cyano, vinyl, and propenyl.
[0161] In one of the specific embodiments, grafting the active group refers to subjecting the active group to a reaction with the substrate with a silane coupling agent. The silane coupling agent is selected from at least one of 3-aminopropyltrimethoxysilane, 2-propynyl[3-(triethoxysilyl)propyl]carbamate, 4-(triethoxy)siliylbutyronitrile, and -(2,3-epoxypropoxy)propyltrimethoxysilane.
[0162] In one of the specific embodiments, grafting of the polymer to the surface of the substrate through the active group refers to a reaction performed at 40-50 C. for 1-8 h (reaction temperature*time). In particular, the reaction temperature*time may be the following combination: 40 C.*4 h, 43 C.*4 h, 44 C.*4 h, 45 C.*4 h, 46 C.*4 h, 47 C.*4 h, 50 C.*4 h, 45 C.*2 h, 45 C.*6 h, 45 C.*1 h, or 45 C.*8 h.
[0163] In one of the specific embodiments, grafting the active group refers to subjecting the silane coupling agent to a reaction with the substrate at 20-30 C. for 1-5 h.
[0164] In addition, in one of the specific embodiments, the preparation method may further include the following step: grafting a biological component to the high polymer. As such, the biochip is used for further biological reactions and applications. Specifically, the biological component is selected from at least one of an amino acid sequence and a nucleotide sequence. Further, the amino acid sequence contains a protein, an oligopeptide, a polypeptide, or the like; and the nucleotide sequence contains an oligonucleotide sequence, a polynucleotide sequence, or the like.
[0165] In one of the specific embodiments, grafting the biological component to the high polymer refers to a reaction performed at 50-60 C. for 0.5-5 h (reaction temperature*time). Specifically, the reaction temperature*time may be the following combination: 55 C.*0.5 h, 55 C.*1 h, 55 C.*2 h, 55 C.*3 h, C.*5 h, 54 C.*1 h, 56 C.*1 h, 52 C.*1 h, 50 C.*1 h, 58 C.*1 h, or 60 C.*1 h. In addition, the examples of the present disclosure provide use of the polymer as described above, the chip as described above, or a chip prepared by the method as described above in the preparation or analysis of a biomolecule.
[0166] The following are specific examples. Unless otherwise specified, the starting materials are all commercially available, and the proportions are all represented by percentages by mass.
TABLE-US-00001 T20: (SEQIDNO:1) tttttttttttttttttttttttttt; Pe: (SEQIDNO:2) caacaacaacaacaacaacaacaacaa; RD: (SEQIDNO:3) ctgccccgggttcctcattctat.
Example 1
[0167] Please refer to
[0168] (1) Polymer Preparation
[0169] With toluene as a solvent, according to the volume ratio, 5 wt % GMA (glycidyl methacrylate), 0.1 wt % PEGDA (polyethylene glycol (glycol) diacrylate) with the molecular weight of 1000 g/mol, and 0.1 wt % AIBN (azodiisobutyronitrile or azobisisobutyronitrile) initiator were added to the system, and after nitrogen was charged and oxygen was removed, the polymerization reaction was performed at 55 C. After the reaction was performed for 3 h, oxygen was injected to stop the reaction. The polymer was extracted with methanol, and dried in vacuum to obtain a stereoscopic epoxy macromolecule, which was detected by GPC (gel permeation chromatography). The detection result is shown in
##STR00055##
[0170] (2) Substrate Surface Modification
[0171] With a piece of glass as the substrate, the piece of glass was subjected to amination film plating on the surface by a solution method. The film plating method is as follows:
[0172] The piece of glass was placed in a solution of 5% APTMS (aminopropyltrimethoxysilane) in ethanol for a reaction at 25 C. for 2 h. The piece of glass was taken out of the solution and baked in an oven at 130 C. for 2 h for the amination on the surface of the piece of glass.
[0173] The piece of glass after amination film plating was placed in a solution of 0.1 wt % epoxy macromolecules in isopropanol for a reaction at 45 C. for 4 h to obtain the surface grafted with the epoxy macromolecules.
[0174] The surface of the piece of glass modified with the epoxy macromolecules was tested for quality by using NH.sub.2CY3 (purchased from Xi'an Kaixin Biotechnology Co., Ltd). The specific procedures are as follows:
[0175] 20 M NH.sub.2CY3 solution was charged to the surface for a reaction at 55 C. for 1 h. The light density was detected by photographing under a fluorescence microscope with a laser in the 532 nm band according to the parameters of 35 mW, 60 ms. The light intensity detection result is shown in
[0176] (3) Oligonucleotide ligation (a) A micro-channel was formed on the surface of the substrate modified with macromolecules by the micro-channel packaging technology, such as surface modification packaging, thermocompressive bonding packaging or anodic bonding micro-channel packaging technology. 5 M NH.sub.2-oligo (NH.sub.2-A.sub.30) solution was added to the micro-channel for a reaction at 37 C. for 24 h to graft a high-density oligo (oligonucleotide) sequence to the surface. A.sub.30 indicates an oligonucleotide strand formed by 30 adenine nucleotides.
[0177] (b) After the surface of the micro-channel was washed with pure water, 5 M T.sub.20-CY3 solution was added for hybridization at 55 C. for 30 min.
[0178] (c) The light density was detected by photographing under a fluorescence microscope with a laser in the 532 nm band according to the parameters of 35 mW, 60 ms. The light intensity detection result is shown in
Example 2
[0179] (1) Polymer Preparation
[0180] Water and DMF (dimethylformamide) were used as solvents, wherein the volume ratio of water to DMF was 4:1. According to the mass ratio, 2% acrylamide (AM), 0.2% GMA monomer, 0.1% KPS (potassium persulfate) initiator, and 0.01% TEMED (tetramethylethylenediamine) gel accelerant were added to the system, and after nitrogen was charged and oxygen was removed, a polymerization reaction was performed at 42 C. After the reaction was performed for 3 h, oxygen was injected to stop the reaction. The polymer was extracted with methanol, and dried in vacuum to obtain a linear epoxy macromolecule, which was detected by GPC (gel permeation chromatography). The detection result is shown in
##STR00056##
[0181] (2) Substrate Surface Modification
[0182] With a piece of glass as the substrate, the piece of glass was subjected to amination film plating on the surface by a solution method. The film plating method is as follows:
[0183] The piece of glass was placed in a solution of 5% APTMS (aminopropyltrimethoxysilane) in ethanol for a reaction at 25 C. for 2 h. The piece of glass was taken out of the solution and baked in an oven at 130 C. for 2 h for the amination on the surface of the piece of glass.
[0184] The piece of glass after amination film plating was placed in a solution of 0.1 wt % epoxy macromolecules in isopropanol for a reaction at 45 C. for 4 h to obtain the surface modified with the epoxy macromolecules.
[0185] The surface of the piece of glass modified with the epoxy macromolecules was tested for quality by using NH.sub.2CY3 (purchased from Xi'an Kaixin Biotechnology Co., Ltd). The specific procedures are as follows: [0186] 20 M NH.sub.2CY3 solution was charged to the surface for a reaction at 55 C. for 1 h. The light density was detected by photographing with a fluorescence microscope using a laser in the 532 nm band according to the parameters of 35 mW, 60 ms. The light intensity detection result is shown in
[0187] (3) Oligonucleotide Ligation
[0188] (a) A micro-channel was formed on the surface of the substrate modified with macromolecules by the micro-channel packaging technology. 5 M NH.sub.2-oligo (NH.sub.2-T.sub.35) solution was added to the micro-channel for a reaction at 37 C. for 24 h to graft a high-density oligo (oligonucleotide) sequence on the surface. T.sub.35 indicates an oligonucleotide strand formed by 35 thymine nucleotides.
[0189] (b) After the surface of the micro-channel was washed with pure water, 5 M A.sub.30-CY3 solution was added for hybridization at 55 C. for 30 min. A.sub.30 indicates an oligonucleotide strand formed by 30 adenine nucleotides.
[0190] (c) The light density was detected by photographing under a fluorescence microscope with a laser in the 532 nm band according to the parameters of 35 mW, 60 ms. The light intensity image is shown in
Example 3
[0191] (1) Polymer Preparation
[0192] Water and DMF (dimethylformamide) were used as solvents, wherein the volume ratio of water to DMF was 4:1. According to the mass ratio, 2% acrylamide (AM), 1% alkenyl azide monomer (purchased from Xi'an Kaixin Biotechnology Co., Ltd), 0.1% KPS initiator, and 0.01% TEMED gel accelerant were added to the system, and after nitrogen was charged and oxygen was removed, a polymerization reaction was performed at 37 C. After the reaction was performed for 3 h, oxygen was injected to stop the reaction. The polymer was extracted with ethanol, and dried in vacuum to obtain a linear azido macromolecule, which was detected by GPC (gel permeation chromatography). The detection result is shown in
[0193] The nuclear magnetic resonance test is shown in
##STR00057##
[0194] (2) Substrate Surface Modification
[0195] With a piece of glass as the substrate, the piece of glass was subjected to alkynylation film plating on the surface by a solution method. The film plating method is as follows:
[0196] The piece of glass was placed in a 1% toluene solution of 2-propynyl[3-(triethoxysilyl)propyl]carbamate for a reaction at 25 C. for 2 h. The piece of glass was taken out of the solution and baked in an oven at 130 C. for 2 h for the alkynylation on the surface of the piece of glass.
[0197] The piece of glass after alkynylation film plating was placed in an isopropanol solution of 0.1 wt % azido macromolecules for a reaction at 45 C. for 4 h to obtain the surface grafted with the azido macromolecules.
[0198] The surface of the piece of glass surface modified with the azido macromolecules was tested for quality by using DBCO (dibenzocyclooctyne)-CY3 (purchased from Xi'an Kaixin Biotechnology Co., Ltd). The specific procedures are as follows:
[0199] 20 M DBCO-CY3 solution was charged to the surface for a reaction at 55 C. for 1 h. The light density was detected by photographing under a fluorescence microscope with a laser irradiation in the 532 nm band according to the parameters of 35 mW, 60 ms. The light intensity detection result is shown in
[0200] (3) Oligonucleotide Ligation
[0201] (a) A micro-channel was formed on the surface of the substrate modified with macromolecules by the micro-channel packaging technology. 5 M DBCO-oligo (DBCO-T.sub.35) solution was added to the micro-channel for a reaction at 37 C. for 24 h to graft a high-density oligo (oligonucleotide) sequence to the surface. T.sub.35 indicates 35 thymine nucleotides.
[0202] (b) After the surface was washed with pure water, 5 M A.sub.30-cy3 was added for hybridization at 55 C. for 30 min. A.sub.30 indicates an oligonucleotide strand formed by 30 adenine nucleotides.
[0203] (c) The light density was detected by photographing under a fluorescence microscope with a laser in the 532 nm band according to the parameters of 35 mW, 60 ms. The light intensity detection result is shown in
Example 4
[0204] (1) Polymer Preparation
[0205] With water as a solvent, according to the mass ratio, 2% alkenyl azide monomer, 0.1% PEGDA monomer with a molecular weight of 1000 g/mol or 575 g/mol, 0.1% KPS initiator, and 0.01% TEMED gel accelerant were added to the system, and after nitrogen was charged and oxygen was removed, a polymerization reaction was performed at 37 C. After the reaction was performed for 3 h, the reaction was terminated. The polymer was extracted with ethanol, and dried in vacuum to obtain a stereoscopic azido macromolecule, which was detected by GPC. The detection result is shown in
##STR00058##
[0206] (2) Substrate Surface Modification
[0207] With a piece of glass as the substrate, the piece of glass was subjected to cyanation film plating on the surface by a solution method. The film plating method is as follows:
[0208] The piece of glass was placed in a solution of 1% 4-(triethoxy)siliylbutyronitrile in toluene for a reaction at 25 C. 2 h. The piece of glass was taken out of the solution and baked in an oven at 130 C. for 2 h for the cyanation on the surface of the piece of glass.
[0209] The piece of glass after cyanation film plating was placed in a solution of 0.1 wt % azido macromolecules in isopropanol for a reaction at 45 C. for 4 h to obtain the surface grafted with the azido macromolecules. The surface of the piece of glass modified with the azido macromolecules was tested for quality by using DBCO-CY3 (purchased from Xi'an Kaixin Biotechnology Co., Ltd). The specific procedures are as follows: [0210] 20 M DBCO-CY3 solution was charged to the surface for a reaction at 55 C. for 1 h. The light density was detected by photographing under a fluorescence microscope with a laser in the 532 nm band according to the parameters of 35 mW, 60 ms. The light intensity detection result is shown in
[0211] (3) Oligonucleotide Ligation
[0212] (a) A micro-channel was formed on the surface of the substrate modified with macromolecules by the micro-channel packaging technology. 5 M DBCO-oligo (DBCO-T.sub.35) solution was added to the micro-channel for a reaction at 37 C. for 24 h to graft a high-density oligo (oligonucleotide) sequence to the surface. T.sub.35 indicates an oligonucleotide strand formed by 35 thymine nucleotides.
[0213] (b) After the surface was washed with pure water, 5 M A.sub.30-CY3 solution was added for hybridization at 55 C. for 30 min.
[0214] (c) The light density was detected by photographing under a fluorescence microscope with a laser in the 532 nm band according to the parameters of 35 mW, 60 ms. The light intensity detection result is shown in
Example 5
[0215] (1) Polymer Preparation
[0216] With water as a solvent, according to the volume ratio, 5% N-(3-aminopropyl)methacrylate hydrochloride monomer, 0.1% PEGDA monomer with a molecular weight of 1000 g/mol or 575 g/mol, and 0.1% AIBN initiator were added to the system, and after nitrogen was charged and oxygen was removed, a polymerization reaction was performed at 55 C. After the reaction was performed for 3 h, oxygen was injected to stop the reaction. The polymer was extracted with methanol, and dried in vacuum to obtain a stereoscopic amino macromolecule, which was detected by GPC (gel permeation chromatography). The detection result is shown in
##STR00059##
[0217] (2) Substrate Surface Modification
[0218] With a piece of glass as the substrate, the piece of glass was subjected to epoxidation film plating on the surface by a solution method. The film plating method is as follows:
[0219] The piece of glass was placed in a solution of 1% -(2,3-epoxypropoxy)propyltrimethoxysilane in toluene for a reaction at 25 C. for 2 h. The piece of glass was taken out of the solution and baked in an oven at 130 C. for 2 h for the epoxidation on the surface of the piece of glass.
[0220] The piece of glass after epoxidation film plating was placed in a solution of 0.1 wt % amino macromolecules in isopropanol for a reaction at 45 C. for 4 h to obtain the surface grafted with the azido macromolecules.
[0221] The surface of the piece of glass modified with the azido macromolecules was tested for quality by using NHSCY3 (customized/purchased from Xi'an Kaixin Biotechnology Co., Ltd). The specific procedures are as follows:
[0222] 20 M NHSCY3 solution was charged to the surface for a reaction at 55 C. for 1 h. The light density was detected by photographing under a fluorescence microscope with a laser irradiation in the 532 nm band according to the parameters of 35 mW, 60 ms. The light intensity detection result is shown in
[0223] (3) Biological Application of the Prepared Biochip [0224] (a) The piece of glass modified with macromolecules was packaged into a chip (flow cell) which is provided with a micro-channel and can contain a certain amount of liquid. 5 M NHS-oligo (NHS-T.sub.35) solution was added to the micro-channel of the packaged chip for a reaction at 37 C. for 24 h to ensure that the surface was grafted with the high-density primer. [0225] (b) After the surface was washed with pure water, 5 M A30-CY3 solution was added for hybridization at 55 C. for 30 min. [0226] (c) The light density was detected by photographing under a fluorescence microscope with a laser in the 532 nm band according to the parameters of 35 mW, 60 ms. The light intensity detection result is shown in
Example 6
[0227] Library hybridization and detection were performed using the chips prepared in Examples 1-5. The specific procedures are as follows:
[0228] 1. Preparation of DNA Hybridization Library
[0229] DNA library: DNA library of fragments with a length of 150-300 bp and known sequences at both ends, the molecular structure of the library is shown in
[0230] The DNA library was mixed with 52 L of deionized water, and 18 L of 0.2 M NaOH solution was added. After uniformly mixing, the mixture was left to stand for denaturation at room temperature for 8 min, and then the reaction was stopped by adding 20 L of 400 mM Tris-HCl buffer, pH 8.0 to obtain 100 L of 100 pM denatured DNA library.
[0231] 2. Hybridization of Denatured DNA Library with Chip Probes
[0232] The denatured DNA library was diluted to 5 pM using a hybridization solution containing 3SSC (20SSC buffer diluted with RNase-free water), pH 7.3. The diluted DNA library was charged into the channel of the chip and the chip was incubated for a hybridization reaction at 42 C. for 30 min. 160-260 L of washing reagent (5SSC, 0.05% Tween 20, pH 7.0) was charged at a rate of 250 L/min to complete the hybridization reaction.
[0233] 3. Initial Extension of the Template [0234] 1) 160 to 260 L of extension buffer reagent (20 mM tris(hydroxymethyl)aminomethane (Tris), 10 mM ammonium sulfate, 2 mM magnesium sulfate, 1.5 M betaine, 1.3% dimethyl sulfoxide, 0.45 M N-methyl formamide, 1.5 M carboxamide, and 0.1% TritonX-100, pH 9.0) was charged into the channel of the chip at a rate of 500 L/min; [0235] 2) 160-260 L of extension reagent (extension buffer reagent, 3 g/mL Bst DNA polymerase, 200 M dNTPs) was charged into the channel of the chip at a rate of 500 L/min, and the chip was incubated for a reaction at 50-60 C. for 5 min to complete initial extension of the template.
[0236] 4. DNA Cluster Generation
[0237] The amplification for clustering may be performed using the ILLUMINA sequencing platform operating manual; the amplification may also be performed using the template walking technique disclosed in the article Isothermal amplification method for next-generation sequencing (ZHAOchun Ma, et al., PNAS Aug. 27, 2013 110 (35) 14320-14323, https://doi.org/10.1073/pnas.1311334110) to generate DNA clusters.
[0238] 5. DNA Cluster Detection [0239] 1) The thermal cycle temperature was set to 50 to 60 C.; [0240] 2) 160-260 L of denaturing reagent formamide was charged into the channel of the chip at a rate of 500 L/min. The chip was denatured for 5 min to break the DNA double-helix structure; [0241] 3) 160-260 L of quality control reagent (0.5 M RD-Cy3, 3SSC) was charged into the channel of the chip at a rate of 500 L/min, where Cy3 in RD-Cy3 was located at the 5 end of RD sequence; [0242] 4) The thermal cycle temperature was set to 25 C. and the chip was incubated for a reaction for 15 to min; [0243] 5) 160-260 L of washing reagent was charged into the channel of the chip at a rate of 500 L/min; [0244] 6) Images were taken on a fluorescence detection system using a 20-fold objective lens, with a wavelength of 532 nm, a laser power of 300 mW, and an exposure time of 20 ms.
[0245] The results of DNA cluster detection are shown in
TABLE-US-00002 TABLE 1 Density Density Average luminance Biochip (cluster/m.sup.2) (cluster/mm.sup.2) per cluster (cts) Example 1 0.0692875 69288 1906 Example 2 0.1271716 127172 1145 Example 3 0.1742481 174248 1730 Example 4 0.1519920 151992 5116 Example 5 0.0860361 86036 399
[0246] As can be seen from Table 1, the chips prepared in Examples 1-5 can be successfully used for hybridization of the library and DNA cluster generation.
[0247] In addition, further, by loading the chip with the surface containing the DNA clusters into a sequencing platform, such as the sequencing platform of ILLUMINA to perform sequencing, sequencing data with quality meeting the requirements of specific applications can be obtained.
[0248] In the description of this specification, the description of the terms one embodiment, certain embodiments, schematic embodiments, examples, specific examples, some examples, or the like, means that the particular features, structures, materials or characteristics comprised in the embodiments or examples are included in at least one embodiment or example of the present disclosure. In this specification, the schematic description of the aforementioned terms does not necessarily refer to the same embodiment or example. Moreover, the particular features, structures, materials or characteristics described may be combined in any embodiment or example in any appropriate manner.
[0249] Although the embodiments of the present application have been shown and described above, it can be understood that the aforementioned embodiments are exemplary and are not to be construed as limiting the present application, and that those of ordinary skill in the art may make changes and modification to such embodiments, without departing from the scope of the present application.