法医学杂志 ›› 2022, Vol. 38 ›› Issue (6): 763-773.DOI: 10.12116/j.issn.1004-5619.2021.510707
王守宇1(), 陶瑞旸2(
), 侯一平3(
), 李成涛2(
)
收稿日期:
2021-07-28
发布日期:
2022-12-25
出版日期:
2022-12-28
通讯作者:
侯一平,李成涛
作者简介:
李成涛,男,研究员,主要从事法医遗传学研究;E-mail:lichengtaohla@163.com基金资助:
Shou-yu WANG1(), Rui-yang TAO2(
), Yi-ping HOU3(
), Cheng-tao LI2(
)
Received:
2021-07-28
Online:
2022-12-25
Published:
2022-12-28
Contact:
Yi-ping HOU,Cheng-tao LI
摘要:
在法医物证鉴定中,准确识别犯罪现场获取的生物样本来源个体及其体液构成对于犯罪性质的明确具有十分关键的作用。近年来,RNA表达分析已成为国际法医学领域发展最快的体液斑鉴定方法之一。由于具有组织或体液特异性表达的特征,多种类型的RNA在既往研究中被证明为非常具有应用前景的体液斑鉴定候选分子标记。本文简要综述了近年来RNA分子标记在体液斑鉴定领域的研究进展,包括目前研究中已得到有效验证的RNA分子标记及其优缺点,并对RNA分子标记在法医学领域的应用前景进行了展望。
中图分类号:
王守宇, 陶瑞旸, 侯一平, 李成涛. RNA表达分析在法医学体液斑鉴定中的应用与展望[J]. 法医学杂志, 2022, 38(6): 763-773.
Shou-yu WANG, Rui-yang TAO, Yi-ping HOU, Cheng-tao LI. Application and Prospect of RNA Profiling Analysis in Forensic Body Fluid Identification[J]. Journal of Forensic Medicine, 2022, 38(6): 763-773.
1 | HARTEVELD J, LINDENBERGH A, SIJEN T. RNA cell typing and DNA profiling of mixed samples: Can cell types and donors be associated?[J]. Sci Justice,2013,53(3):261-269. doi:10.1016/j.scijus.2013. 02.001 . |
2 | VIRKLER K, LEDNEV I K. Analysis of body fluids for forensic purposes: From laboratory testing to non-destructive rapid confirmatory identification at a crime scene[J]. Forensic Sci Int,2009,188(1/2/3):1-17. doi:10.1016/j.forsciint.2009.02.013 . |
3 | TOBE S S, WATSON N, DAÉID N N. Evaluation of six presumptive tests for blood, their specifici-ty, sensitivity, and effect on high molecular-weight DNA[J]. J Forensic Sci,2007,52(1):102-109. doi:10.1111/j.1556-4029.2006.00324.x . |
4 | MYERS J R, ADKINS W K. Comparison of modern techniques for saliva screening[J]. J Forensic Sci,2008,53(4):862-867. doi:10.1111/j.1556-4029.2008 . |
00755.x. | |
5 | SIJEN T. Molecular approaches for forensic cell type identification: On mRNA, miRNA, DNA methylation and microbial markers[J]. Forensic Sci Int Genet,2015,18:21-32. doi:10.1016/j.fsigen.2014.11.015 . |
6 | ZUBAKOV D, CHAMIER-CIEMIŃSKA J, KOKMEI-JER I, et al. Introducing novel type of human DNA markers for forensic tissue identification: DNA copy number variation allows the detection of blood and semen[J]. Forensic Sci Int Genet,2018,36:112-118. doi:10.1016/j.fsigen.2018.06.021 . |
7 | DOBAY A, HAAS C, FUCILE G, et al. Micro-biome-based body fluid identification of samples exposed to indoor conditions[J]. Forensic Sci Int Genet,2019,40:105-113. doi:10.1016/j.fsigen.2019.02.010 . |
8 | 邹凯南,桂程,曹禹,等. 人体生物性物质来源鉴定及法医学应用研究进展[J].法医学杂志,2016,32(3):204-210. doi:10.3969/j.issn.1004-5619.2016.03.011 . |
ZOU K N, GUI C, CAO Y, et al. Source identification of human biological materials and its prospect in forensic science[J]. Fayixue Zazhi,2016,32(3):204-210. | |
9 | JUUSOLA J, BALLANTYNE J. Messenger RNA profiling: A prototype method to supplant conventional methods for body fluid identification[J]. Forensic Sci Int,2003,135(2):85-96. doi:10.1016/s0379-0738(03)00197-x . |
10 | HANSON E K, LUBENOW H, BALLANTYNE J. Identification of forensically relevant body fluids using a panel of differentially expressed microRNAs[J]. Anal Biochem,2009,387(2):303-314. doi:10.1016/j.ab.2009.01.037 . |
11 | ZHANG Y, LIU B, SHAO C, et al. Evaluation of the inclusion of circular RNAs in mRNA profiling in forensic body fluid identification[J]. Int J Legal Med,2018,132(1):43-52. doi:10.1007/s00414-017-1690-7 . |
12 | MELÉ M, FERREIRA P G, REVERTER F, et al. Human genomics. The human transcriptome across tissues and individuals[J]. Science,2015,348(6235):660-665. doi:10.1126/science.aaa0355 . |
13 | BAUER M, KRAUS A, PATZELT D. Detection of epithelial cells in dried blood stains by reverse transcriptase-polymerase chain reaction[J]. J Forensic Sci,1999,44(6):1232-1236. |
14 | BAUER M, PATZELT D. Evaluation of mRNA markers for the identification of menstrual blood[J]. J Forensic Sci,2002,47(6):1278-1282. |
15 | BAUER M, PATZELT D. Protamine mRNA as molecular marker for spermatozoa in semen stains[J]. Int J Legal Med,2003,117(3):175-179. doi:10.1007/s00414-002-0347-2 . |
16 | ZUBAKOV D, HANEKAMP E, KOKSHOORN M, et al. Stable RNA markers for identification of blood and saliva stains revealed from whole genome expression analysis of time-wise degraded samples[J]. Int J Legal Med,2008,122(2):135-142. doi:10.1007/s00414-007-0182-6 . |
17 | HANSON E, HAAS C, JUCKER R, et al. Specific and sensitive mRNA biomarkers for the identification of skin in ‘touch DNA’ evidence[J]. Forensic Sci Int Genet,2012,6(5):548-558. doi:10.1016/j.fsigen.2012.01.004 . |
18 | HAAS C, HANSON E, KRATZER A, et al. Selection of highly specific and sensitive mRNA biomarkers for the identification of blood[J]. Forensic Sci Int Genet,2011,5(5):449-458. doi:10.1016/j.fsi gen.2010.09.006 . |
19 | ZUBAKOV D, KOKSHOORN M, KLOOSTERMAN A, et al. New markers for old stains: Stable mRNA markers for blood and saliva identification from up to 16-year-old stains[J]. Int J Legal Med,2009,123(1):71-74. doi:10.1007/s00414-008-0249-z . |
20 | FLEMING R I, HARBISON S A. The development of a mRNA multiplex RT-PCR assay for the definitive identification of body fluids[J]. Forensic Sci Int Genet,2010,4(4):244-256. doi:10.1016/j.fsi gen.2009.10.006 . |
21 | ALBANI P P, FLEMING R. Novel messenger RNAs for body fluid identification[J]. Sci Justice,2018,58(2):145-152. doi:10.1016/j.scijus.2017.09.002 . |
22 | PARK S M, PARK S Y, KIM J H, et al. Genome-wide mRNA profiling and multiplex quantitative RT-PCR for forensic body fluid identification[J]. Forensic Sci Int Genet,2013,7(1):143-150. doi:10.1016/j.fsigen.2012.09.001 . |
23 | NUSSBAUMER C, GHAREHBAGHI-SCHNELL E, KORSCHINECK I. Messenger RNA profiling: A novel method for body fluid identification by Real-Time PCR[J]. Forensic Sci Int,2006,157(2/3):181-186. doi:10.1016/j.forsciint.2005.10.009 . |
24 | JUUSOLA J, BALLANTYNE J. Multiplex mRNA profiling for the identification of body fluids[J]. Forensic Sci Int,2005,152(1):1-12. doi:10.1016/j.fors ciint.2005.02.020 . |
25 | SAKURADA K, IKEGAYA H, FUKUSHIMA H, et al. Evaluation of mRNA-based approach for identification of saliva and semen[J]. Leg Med (Tokyo),2009,11(3):125-128. doi:10.1016/j.legalmed.2008.10. 002 . |
26 | HANSON E, INGOLD S, HAAS C, et al. Messenger RNA biomarker signatures for forensic body fluid identification revealed by targeted RNA sequencing[J]. Forensic Sci Int Genet,2018,34:206-221. doi:10.1016/j.fsigen.2018.02.020 . |
27 | HAAS C, HANSON E, ANJOS M J, et al. RNA/DNA co-analysis from human saliva and semen stains -- Results of a third collaborative EDNAP exercise[J]. Forensic Sci Int Genet,2013,7(2):230-239. doi:10.1016/j.fsigen.2012.10.011 . |
28 | HANSON E K, BALLANTYNE J. Highly specific mRNA biomarkers for the identification of vaginal secretions in sexual assault investigations[J]. Sci Justice,2013,53(1):14-22. doi:10.1016/j.scijus.2012.03. 007 . |
29 | HAAS C, HANSON E, ANJOS M J, et al. RNA/DNA co-analysis from human menstrual blood and vaginal secretion stains: Results of a fourth and fifth collaborative EDNAP exercise[J]. Forensic Sci Int Genet,2014,8(1):203-212. doi:10.1016/j.fsigen.2013. 09.009 . |
30 | VISSER M, ZUBAKOV D, BALLANTYNE K N, et al. mRNA-based skin identification for forensic applications[J]. Int J Leg Med,2011,125(2):253-263. doi:10.1007/s00414-010-0545-2 . |
31 | HAAS C, HANSON E, BÄR W, et al. mRNA profiling for the identification of blood -- Results of a collaborative EDNAP exercise[J]. Forensic Sci Int Genet,2011,5(1):21-26. doi:10.1016/j.fsigen.2010.01. 003 . |
32 | HAAS C, HANSON E, ANJOS M J, et al. RNA/DNA co-analysis from blood stains -- Results of a second collaborative EDNAP exercise[J]. Forensic Sci Int Genet,2012,6(1):70-80. doi:10.1016/j.fsigen.2011. 02.004 . |
33 | HAAS C, HANSON E, BANEMANN R, et al. RNA/DNA co-analysis from human skin and contact traces -- Results of a sixth collaborative EDNAP exercise[J]. Forensic Sci Int Genet,2015,16:139-147. doi:10.1016/j.fsigen.2015.01.002 . |
34 | INGOLD S, DØRUM G, HANSON E, et al. Body fluid identification using a targeted mRNA massively parallel sequencing approach -- Results of a EUROFORGEN/EDNAP collaborative exercise[J]. Forensic Sci Int Genet,2018,34:105-115. doi:10.1016/j.fsigen.2018.01.002 . |
35 | SALZMANN A P, BAMBERG M, COURTS C, et al. mRNA profiling of mock casework samples: Results of a FoRNAP collaborative exercise[J]. Forensic Sci Int Genet,2021,50:102409. doi:10.1016/j.fsigen.2020.102409 . |
36 | BAUER M, PATZELT D. A method for simultaneous RNA and DNA isolation from dried blood and semen stains[J]. Forensic Sci Int,2003,136(1/2/3):76-78. doi:10.1016/S0379-0738(03)00219-6 . |
37 | ALVAREZ M, JUUSOLA J, BALLANTYNE J. An mRNA and DNA co-isolation method for forensic casework samples[J]. Anal Biochem,2004,335(2):289-298. doi:10.1016/j.ab.2004.09.002 . |
38 | BOWDEN A, FLEMING R, HARBISON S A. A method for DNA and RNA co-extraction for use on forensic samples using the Promega DNA IQTM system[J]. Forensic Sci Int Genet,2011,5(1):64-68. doi:10.1016/j.fsigen.2009.11.007 . |
39 | PARKER C, HANSON E, BALLANTYNE J. Optimization of dried stain co-extraction methods for efficient recovery of high quality DNA and RNA for forensic analysis[J]. Forensic Sci Int Genet Suppl Ser,2011,3(1):e309-e310. doi:10.1016/j.fsigss.2011. 09.017 . |
40 | SETZER M, JUUSOLA J, BALLANTYNE J. Recovery and stability of RNA in vaginal swabs and blood, semen, and saliva stains[J]. J Forensic Sci,2008,53(2):296-305. doi:10.1111/j.1556-4029.2007 . |
00652.x. | |
41 | SIRKER M, SCHNEIDER P M, GOMES I. A 17-month time course study of human RNA and DNA degradation in body fluids under dry and humid environmental conditions[J]. Int J Legal Med,2016,130(6):1431-1438. doi:10.1007/s00414-016-1373-9 . |
42 | HE L, HANNON G J. MicroRNAs: Small RNAs with a big role in gene regulation[J]. Nat Rev Genet,2004,5(7):522-531. doi:10.1038/nrg1379 . |
43 | WEBER J A, BAXTER D H, ZHANG S, et al. The microRNA spectrum in 12 body fluids[J]. Clin Chem,2010,56(11):1733-1741. doi:10.1373/clinchem. 2010.147405 . |
44 | KOZOMARA A, GRIFFITHS-JONES S. miRBase: Integrating microRNA annotation and deep-sequen-cing data[J]. Nucleic Acids Res,2011,39(S1):D152-D157. doi:10.1093/nar/gkq1027 . |
45 | COURTS C, MADEA B. Micro-RNA -- A potential for forensic science?[J]. Forensic Sci Int,2010,203(1/2/3):106-111. doi:10.1016/j.forsciint.2010.07. 002 . |
46 | 王正,张霁,唐丹舟,等. microRNA的检测技术及其法医学应用前景[J].法医学杂志,2014,30(1):55-59. doi:10.3969/j.issn.1004-5619.2014.01.014 . |
WANG Z, ZHANG J, TANG D Z, et al. Detection technologies of microRNA and their prospects for forensic applications[J]. Fayixue Zazhi,2014,30(1):55-59. | |
47 | SAUER E, REINKE A K, COURTS C. Differentiation of five body fluids from forensic samples by expression analysis of four microRNAs using quantitative PCR[J]. Forensic Sci Int Genet,2016,22:89-99. doi:10.1016/j.fsigen.2016.01.018 . |
48 | SEASHOLS-WILLIAMS S, LEWIS C, CALLOWAY C, et al. High-throughput miRNA sequencing and identification of biomarkers for forensically relevant biological fluids[J]. Electrophoresis,2016,37(21):2780-2788. doi:10.1002/elps.201600258 . |
49 | WANG Z, ZHOU D, CAO Y, et al. Characterization of microRNA expression profiles in blood and saliva using the Ion Personal Genome Machine® System (Ion PGMTM System)[J]. Forensic Sci Int Genet,2016,20:140-146. doi:10.1016/j.fsigen.2015.10. 008 . |
50 | DØRUM G, INGOLD S, HANSON E, et al. Predicting the origin of stains from whole miRNome massively parallel sequencing data[J]. Forensic Sci Int Genet,2019,40:131-139. doi:10.1016/j.fsigen.2019. 02.015 . |
51 | WANG Z, ZHANG J, LUO H, et al. Screening and confirmation of microRNA markers for forensic body fluid identification[J]. Forensic Sci Int Genet,2013,7(1):116-123. doi:10.1016/j.fsigen.2012.07.006 . |
52 | LI Z, BAI P, PENG D, et al. Screening and confirmation of microRNA markers for distinguishing between menstrual and peripheral blood[J]. Forensic Sci Int Genet,2017,30:24-33. doi:10.1016/j.fsigen. 2017.05.012 . |
53 | 何红霞,季安全,韩娜,等. 基于microRNA表达量及判别分析的外周血与月经血鉴别[J].法医学杂志,2020,36(4):514-518,524. doi:10.12116/j.issn.1004-5619.2020.04.016 . |
HE H X, JI A Q, HAN N, et al. Identification of peripheral blood and menstrual blood based on the expression level of microRNAs and discriminant analysis[J]. Fayixue Zazhi,2020,36(4):514-518,524. | |
54 | SANGER H L, KLOTZ G, RIESNER D, et al. Viroids are single-stranded covalently closed circular RNA molecules existing as highly base-paired rod-like structures[J]. Proc Natl Acad Sci USA,1976,73(11):3852-3856. doi:10.1073/pnas.73.11.3852 . |
55 | GRABOWSKI P J, ZAUG A J, CECH T R. The intervening sequence of the ribosomal RNA precursor is converted to a circular RNA in isolated nuclei of Tetrahymena[J]. Cell,1981,23(2):467-476. doi:10.1016/0092-8674(81)90142-2 . |
56 | KOS A, DIJKEMA R, ARNBERG A C, et al. The hepatitis delta (δ) virus possesses a circular RNA[J]. Nature,1986,323(6088):558-560. doi:10.1038/32355 |
8a0. | |
57 | GUO J U, AGARWAL V, GUO H, et al. Expanded identification and characterization of mammalian circular RNAs[J]. Genome Biol,2014,15(7):409. doi:10.1186/s13059-014-0409-z . |
58 | ZHANG X O, WANG H B, ZHANG Y, et al. Complementary sequence-mediated exon circularization[J]. Cell,2014,159(1):134-147. doi:10.1016/j.cell. 2014.09.001 . |
59 | STARKE S, JOST I, ROSSBACH O, et al. Exon circularization requires canonical splice signals[J]. Cell Rep,2015,10(1):103-111. doi:10.1016/j.celrep.2014. 12.002 . |
60 | MEMCZAK S, JENS M, ELEFSINIOTI A, et al. Circular RNAs are a large class of animal RNAs with regulatory potency[J]. Nature,2013,495(7441):333-338. doi:10.1038/nature11928 . |
61 | SALZMAN J, GAWAD C, WANG P L, et al. Circular RNAs are the predominant transcript isoform from hundreds of human genes in diverse cell types[J]. PLoS One,2012,7(2):e30733. doi:10.1371/ journal.pone.0030733 . |
62 | MEMCZAK S, PAPAVASILEIOU P, PETERS O, et al. Identification and characterization of circular RNAs as a new class of putative biomarkers in human blood[J]. PLoS One,2015,10(10):e0141214. doi:10.1371/journal.pone.0141214 . |
63 | SONG F, LUO H, XIE M, et al. Microarray expression profile of circular RNAs in human body fluids[J]. Forensic Sci Int Genet Suppl Ser,2017,6:e55-e56. doi:10.1016/j.fsigss.2017.09.005 . |
64 | LIU B, SONG F, YANG Q, et al. Characterization of tissue-specific biomarkers with the expression of circRNAs in forensically relevant body fluids[J]. Int J Legal Med,2019,133(5):1321-1331. doi:10.1007/s00414-019-02027-y . |
65 | LIU B, YANG Q, MENG H, et al. Development of a multiplex system for the identification of forensically relevant body fluids[J]. Forensic Sci Int Genet,2020,47:102312. doi:10.1016/j.fsigen.2020.102312 . |
66 | BAHN J H, ZHANG Q, LI F, et al. The landscape of microRNA, Piwi-interacting RNA, and circular RNA in human saliva[J]. Clin Chem,2015,61(1):221-230. doi:10.1373/clinchem.2014.230433 . |
67 | HONG Y, WANG C, FU Z, et al. Systematic characterization of seminal plasma piRNAs as molecular biomarkers for male infertility[J]. Sci Rep,2016,6:24229. doi:10.1038/srep24229 . |
68 | HUANG X, YUAN T, TSCHANNEN M, et al. Characterization of human plasma-derived exosomal RNAs by deep sequencing[J]. BMC Genomics,2013,14:319. doi:10.1186/1471-2164-14-319 . |
69 | FU A, JACOBS D I, ZHU Y. Epigenome-wide analysis of piRNAs in gene-specific DNA methylation[J]. RNA Biol,2014,11(10):1301-1312. doi:10.1080/154 76286.2014.996091 . |
70 | MARTINEZ V D, VUCIC E A, THU K L, et al. Unique somatic and malignant expression patterns implicate PIWI-interacting RNAs in cancer-type specific biology[J]. Sci Rep,2015,5:10423. doi:10.1038/ srep10423 . |
71 | SIMON B, KIRKPATRICK J P, ECKHARDT S, et al. Recognition of 2′-O-methylated 3′-end of piRNA by the PAZ domain of a Piwi protein[J]. Structure,2011,19(2):172-180. doi:10.1016/j.str.2010.11.015 . |
72 | WANG S, WANG Z, TAO R, et al. The potential use of Piwi-interacting RNA biomarkers in forensic body fluid identification: A proof-of-principle study[J]. Forensic Sci Int Genet,2019,39:129-135. doi:10.1016/j.fsigen.2019.01.002 . |
73 | WANG S, WANG Z, TAO R, et al. Expression profile analysis of Piwi-interacting RNA in forensically relevant biological fluids[J]. Forensic Sci Int Genet,2019,42:171-180. doi:10.1016/j.fsigen.2019.07. 015 . |
74 | MAYES C, SEASHOLS-WILLIAMS S, HUGHES-STAMM S. A capillary electrophoresis method for identifying forensically relevant body fluids using miRNAs[J]. Leg Med (Tokyo),2018,30:1-4. doi:10 . |
1016/j.legalmed.2017.10.013. | |
75 | HAAS C, KLESSER B, MAAKE C, et al. mRNA profiling for body fluid identification by reverse transcription endpoint PCR and realtime PCR[J]. Forensic Sci Int Genet,2009,3(2):80-88. doi:10.1016/j.fsigen.2008.11.003 . |
76 | LINDENBERGH A, DE PAGTER M, RAMDAYAL G, et al. A multiplex (m)RNA-profiling system for the forensic identification of body fluids and contact traces[J]. Forensic Sci Int Genet,2012,6(5):565-577. doi:10.1016/j.fsigen.2012.01.009 . |
77 | JUUSOLA J, BALLANTYNE J. mRNA profiling for body fluid identification by multiplex quantitative RT-PCR[J]. J Forensic Sci,2007,52(6):1252-1262. doi:10.1111/j.1556-4029.2007.00550.x . |
78 | HAAS C, MUHEIM C, KRATZER A, et al. mRNA profiling for the identification of sperm and seminal plasma[J]. Forensic Sci Int Genet Suppl Ser,2009,2(1):534-535. doi:10.1016/j.fsigss.2009.08.109 . |
79 | JAKUBOWSKA J, MACIEJEWSKA A, PAWŁOW-SKI R. mRNA profiling for vaginal fluid and menstrual blood identification[J]. Methods Mol Biol,2016,1420:33-42. doi:10.1007/978-1-4939-3597-0_3 . |
80 | LINDENBERGH A, MAASKANT P, SIJEN T. Implementation of RNA profiling in forensic casework[J]. Forensic Sci Int Genet,2013,7(1):159-166. doi:10.1016/j.fsigen.2012.09.003 . |
81 | ROEDER A D, HAAS C. mRNA profiling using a minimum of five mRNA markers per body fluid and a novel scoring method for body fluid identification[J]. Int J Legal Med,2013,127(4):707-721. doi:10.1007/s00414-012-0794-3 . |
82 | HEID C A, STEVENS J, LIVAK K J, et al. Real time quantitative PCR[J]. Genome Res,1996,6(10):986-994. doi:10.1101/gr.6.10.986 . |
83 | LIVAK K J, SCHMITTGEN T D. Analysis of relative gene expression data using real-time quantitative PCR and the 2 - Δ Δ C T method[J]. Methods,2001,25(4):402-408. doi:10.1006/meth.2001.1262 . |
84 | WANG Z, LUO H, PAN X, et al. A model for data analysis of microRNA expression in forensic body fluid identification[J]. Forensic Sci Int Genet,2012,6(3):419-423. doi:10.1016/j.fsigen.2011.08.008 . |
85 | SAUER E, MADEA B, COURTS C. An evidence based strategy for normalization of quantitative PCR data from miRNA expression analysis in forensically relevant body fluids[J]. Forensic Sci Int Genet,2014,11:174-181. doi:10.1016/j.fsigen.2014.03.011 . |
86 | SIRKER M, FIMMERS R, SCHNEIDER P M, et al. Evaluating the forensic application of 19 target microRNAs as biomarkers in body fluid and tissue identification[J]. Forensic Sci Int Genet,2017,27:41-49. doi:10.1016/j.fsigen.2016.11.012 . |
87 | FUJIMOTO S, MANABE S, MORIMOTO C, et al. Optimal small-molecular reference RNA for RT-qPCR-based body fluid identification[J]. Forensic Sci Int Genet,2018,37:135-142. doi:10.1016/j.fsigen.2018. 08.010 . |
88 | WANG S, TAO R, MING T, et al. Expression profile analysis and stability evaluation of 18 small RNAs in the Chinese Han population[J]. Electrophoresis,2020,41(23):2021-2028. doi:10.1002/elps.2020 00058 . |
89 | JÄGER A C, ALVAREZ M L, DAVIS C P, et al. Developmental validation of the MiSeq FGx forensic genomics system for targeted next generation sequencing in forensic DNA casework and database laboratories[J]. Forensic Sci Int Genet,2017,28:52-70. doi:10.1016/j.fsigen.2017.01.011 . |
90 | KIESLER K M, STEFFEN C R, COBLE M D, et al. Initial assessment of the Precision ID Globalfiler Mixture ID panel on the Ion Torrent S5XL DNA sequencer and Converge v2.0 software[J]. Forensic Sci Int Genet Suppl Ser,2017,6:e94-e95. doi:10.1016/ |
j.fsigss.2017.09.044. | |
91 | VAN DER GAAG K J, DE LEEUW R H, HOOGEN-BOOM J, et al. Massively parallel sequencing of short tandem repeats -- Population data and mixture analysis results for the PowerSeqTM system[J]. Forensic Sci Int Genet,2016,24:86-96. doi:10.1016/j.fsigen. 2016.05.016 . |
92 | LIN M H, JONES D F, FLEMING R. Transcriptomic analysis of degraded forensic body fluids[J]. Forensic Sci Int Genet,2015,17:35-42. doi:10.1016/j.fsigen.2015.03.005 . |
93 | ZUBAKOV D, KOKMEIJER I, RALF A, et al. Towards simultaneous individual and tissue identification: A proof-of-principle study on parallel sequencing of STRs, amelogenin, and mRNAs with the Ion Torrent PGM[J]. Forensic Sci Int Genet,2015,17:122-128. doi:10.1016/j.fsigen.2015.04.002 . |
94 | DØRUM G, INGOLD S, HANSON E, et al. Predicting the origin of stains from next generation sequencing mRNA data[J]. Forensic Sci Int Genet,2018,34:37-48. doi:10.1016/j.fsigen.2018.01.001 . |
95 | ELKINS K M, PEREZ A C U, SWEETIN K C. Rapid and inexpensive species differentiation using a multiplex real-time polymerase chain reaction high-resolution melt assay[J]. Anal Biochem,2016,500:15-17. doi:10.1016/j.ab.2016.01.013 . |
96 | KIESEL B D, ELKINS K M. Development of a PCR high-resolution melt assay for Artemisia absinthium (Wormwood) and a triplex assay with two additional “Unregulated Legal High” species Datura stramonium (Jimson Weed) and Merremia tuberosa (Hawaiian Woodrose)[J]. J Forensic Sci,2019,64(6):1817-1822. doi:10.1111/1556-4029.14093 . |
97 | BORNA T, SALAMI S A, SHOKRPOUR M. High resolution melting curve analysis revealed SNPs in major cannabinoid genes associated with drug and non-drug types of cannabis[J]. Biotechnol Biotechnol Equip,2017,31(4):839-845. doi:10.1080/13102818. 2017.1333456 . |
98 | HANSON E K, BALLANTYNE J. Rapid and inexpensive body fluid identification by RNA profiling-based multiplex high resolution melt (HRM) analysis[J]. F1000Res,2013,2:281. doi:10.12688/f1000re search.2-281.v2 . |
99 | KLING D, WELANDER J, TILLMAR A, et al. DNA microarray as a tool in establishing genetic relatedness -- Current status and future prospects[J]. Forensic Sci Int Genet,2012,6(3):322-329. doi:10 . |
1016/j.fsigen.2011.07.007. | |
100 | ZUBAKOV D, LIU F, KOKMEIJER I, et al. Human age estimation from blood using mRNA, DNA methylation, DNA rearrangement, and telomere length[J]. Forensic Sci Int Genet,2016,24:33-43. doi:10.1016/j.fsigen.2016.05.014 . |
101 | GEISS G K, BUMGARNER R E, BIRDITT B, et al. Direct multiplexed measurement of gene expression with color-coded probe pairs[J]. Nat Biotechnol,2008,26(3):317-325. doi:10.1038/nbt1385 . |
102 | DANAHER P, WHITE R L, HANSON E K, et al. Facile semi-automated forensic body fluid identification by multiplex solution hybridization of Nano-String® barcode probes to specific mRNA targets[J]. Forensic Sci Int Genet,2015,14:18-30. doi:10.1016/j.fsigen.2014.09.005 . |
103 | USHIO M, YUI I, YOSHIDA N, et al. Detection of respiratory syncytial virus genome by subgroups-A, B specific reverse transcription loop-mediated isothermal amplification (RT-LAMP)[J]. J Med Virol,2005,77(1):121-127. doi:10.1002/jmv.20424 . |
104 | MAHONY J, CHONG S, BULIR D, et al. Development of a sensitive loop-mediated isothermal amplification assay that provides specimen-to-result diagnosis of respiratory syncytial virus infection in 30 minutes[J]. J Clin Microbiol,2013,51(8):2696-2701. doi:10.1128/JCM.00662-13 . |
105 | YAMAZAKI W, MIOULET V, MURRAY L, et al. Development and evaluation of multiplex RT-LAMP assays for rapid and sensitive detection of foot-and-mouth disease virus[J]. J Virol Methods,2013,192(1/2):18-24. doi:10.1016/j.jviromet.2013.03.018 . |
106 | SU C W, LI C Y, LEE J C, et al. A novel application of real-time RT-LAMP for body fluid identification: Using HBB detection as the model[J]. Forensic Sci Med Pathol,2015,11(2):208-215. doi:10 . |
1007/s12024 -015-9668-6. | |
107 | JACKSON K R, LAYNE T, DENT D A, et al. A novel loop-mediated isothermal amplification method for identification of four body fluids with smartphone detection[J]. Forensic Sci Int Genet,2020,45:102195. doi:10.1016/j.fsigen.2019.102195 . |
108 | HANSON E, INGOLD S, HAAS C, et al. Targeted multiplexed next generation RNA sequencing assay for tissue source determination of forensic samples[J]. Forensic Sci Int Genet Suppl Ser,2015,5:e441-e443. doi:10.1016/j.fsigss.2015.09.175 . |
109 | INGOLD S, HAAS C, DØRUM G, et al. Association of a body fluid with a DNA profile by targeted RNA/DNA deep sequencing[J]. Forensic Sci Int Genet Suppl Ser,2017,6:e112-e113. doi:10.1016/ |
j.fsigss.2017.09.037. | |
110 | HANSON E, INGOLD S, DØRUM G, et al. Assigning forensic body fluids to DNA donors in mixed samples by targeted RNA/DNA deep seqeuncing of coding region SNPs using ion torrent technology[J]. Forensic Sci Int Genet Suppl Ser,2019,7(1):23-24. doi:10.1016/j.fsigss.2019.09.011 . |
111 | INGOLD S, DØRUM G, HANSON E, et al. Assigning forensic body fluids to donors in mixed body fluids by targeted RNA/DNA deep sequencing of coding region SNPs[J]. Int J Leg Med,2020,134(2):473-485. doi:10.1007/s00414-020-02252-w . |
112 | WANG S, WANG Z, TAO R, et al. Validating the consistency of cSNPs analysis results between DNA and RNA using SNaPshot method[J]. Forensic Sci Int Genet Suppl Ser,2019,7(1):76-78. doi:10.1016/j.fsigss.2019.09.030 . |
113 | LIU Z, GAO Z, WANG J, et al. A method of identifying the blood contributor in mixture stains through detecting blood-specific mRNA polymorphism[J]. Electrophoresis,2020,41(15):1364-1373. doi:10.1002/elps.202000053 . |
114 | LIU J, CHENG X, LIU F, et al. Identification of coding region SNPs from specific and sensitive mRNA biomarkers for the deconvolution of the semen donor in a body fluid mixture[J]. Forensic Sci Int Genet,2021,52:102483. doi:10.1016/j.fsigen.2021. 102483 . |
[1] | 陶瑞旸, 王守宇, 袁春艳, 夏若成, 李成涛. 应用SNaPshot技术检测精液特异性cSNP遗传标记[J]. 法医学杂志, 2023, 39(5): 465-470. |
[2] | 李雯, 李豪喆, 陈琛, 蔡伟雄. 面部微表情分析技术在法医精神病学领域的研究现状及应用展望[J]. 法医学杂志, 2023, 39(5): 493-500. |
[3] | 王中华, 李淑瑾. 人类身高推断的分子生物学研究进展[J]. 法医学杂志, 2023, 39(5): 487-492. |
[4] | 张琦, 赵禾苗, 杨康, 陈静, 杨瑞琴, 王冲. 利用朴素贝叶斯和多元logistic回归构建月经血mRNA标志分析模型[J]. 法医学杂志, 2023, 39(5): 447-451. |
[5] | 陈璐, 周喆, 王升启. 陈旧骸骨DNA身份鉴定的法医学进展[J]. 法医学杂志, 2023, 39(5): 478-486. |
[6] | 曾勇, 邹冬华, 范颖, 徐晴, 陶陆阳, 陈忆九, 李正东. 人体血管有限元建模及生物力学的研究进展与法医学应用[J]. 法医学杂志, 2023, 39(5): 471-477. |
[7] | 郭科建, 黄磊, 李士林, 殷才湧, 汤真. 山东汉族人群37个Y-STR基因座多态性与突变调查[J]. 法医学杂志, 2023, 39(5): 501-506. |
[8] | 杨乐, 丛欣, 陈冲, 贾莉, 李惠芬, 马云龙, 石妍. 应用多种遗传标记鉴定疑似父子关系的全同胞关系1例[J]. 法医学杂志, 2023, 39(4): 424-427. |
[9] | 范飞, 武娟, 邓振华. 听力学客观检测技术在法医临床学中的应用进展[J]. 法医学杂志, 2023, 39(4): 360-366. |
[10] | 向青青, 陈立方, 苏秦, 杜宇坤, 梁沛妍, 康晓东, 石河, 徐曲毅, 赵建, 刘超, 陈晓晖. 微生物群落演替在死亡时间推断中的研究进展[J]. 法医学杂志, 2023, 39(4): 399-405. |
[11] | 曹宇奇, 施妍, 向平, 郭寅龙. 机器学习辅助非靶向筛查策略用于芬太尼类物质识别鉴定的研究进展[J]. 法医学杂志, 2023, 39(4): 406-416. |
[12] | 蒋志霞, 毛小慧, 衡素景. 母亲参与的姑侄亲缘关系鉴定1例[J]. 法医学杂志, 2023, 39(3): 326-328. |
[13] | 白雪, 马冠车, 付丽红, 李淑瑾, 张晓静. 生父性侵女儿法医学鉴定1例[J]. 法医学杂志, 2023, 39(3): 308-311. |
[14] | 臧钰, 李燃, 陈海英, 杨静怡, 乌日嘎, 孙宏钰. 应用法医系谱学鉴定寻亲案件1例[J]. 法医学杂志, 2023, 39(3): 323-325. |
[15] | 任贺, 刘志勇, 石妍, 陈冲, 贾莉, 陈滢, 刘雅诚, 严江伟. 强奸致孕形成完全性葡萄胎亲子鉴定2例[J]. 法医学杂志, 2023, 39(3): 315-318. |
阅读次数 | ||||||
全文 |
|
|||||
摘要 |
|
|||||