词条 | Yi Zhang (biochemist) |
释义 |
| name = Yi Zhang | image = HHMI_Yi_Zhang.jpg | image_size = | alt = | caption = | birth_name = Zhang Yi | birth_date = | birth_place = Chongqing, China | death_date = | death_place = | residence = | citizenship = | nationality = | fields = | workplaces = Harvard Medical School Boston Children's Hospital Howard Hughes Medical Institute | alma_mater = | thesis_title = | thesis_url = | thesis_year = | doctoral_advisor = | academic_advisors = Danny Reinberg | doctoral_students = | notable_students = | known_for = Epigenetics Embryogenesis Somatic cell nuclear transfer Stem cell | author_abbrev_bot = | author_abbrev_zoo = | influences = | influenced = | awards = | signature = | signature_alt = | website = {{URL|https://www.zhanglab.tch.harvard.edu/}} | footnotes = | spouse = | education = B.Sc. and Master in Biophysics from China Agricultural University Ph.D. in Molecular Biophysics from Florida State University }} Yi Zhang ({{zh|s=张毅|p=Zhāng Yì}}) is a Chinese-American biochemist who specializes in the fields of epigenetics, chromatin, and developmental reprogramming. He is a Fred Rosen Professor of Pediatrics and Professor of Genetics at Harvard Medical School,[1] a Senior Investigator of Program in Cellular and Molecular Medicine at Boston Children's Hospital,[2] and an Investigator of the Howard Hughes Medical Institute.[3] He is also an Associate Member of the Harvard Stem Cell Institute,[4] as well as the Broad Institute of MIT and Harvard.[5] He is best known for his discovery of several classes of epigenetic enzymes and the identification of epigenetic barriers of SCNT cloning. EducationZhang received his B.Sc. and Master degrees in Biophysics from China Agricultural University in 1984 and 1987, respectively. He then received his Ph.D. in Molecular Biophysics from Florida State University in 1995.[6] From 1995 to 1999, He did his postdoctoral training in the lab of Danny Reinberg at the Howard Hughes Medical Institute, Robert Wood Johnson Medical School of the University of Medicine and Dentistry of New Jersey.[7][8] Career and researchAppointments
ResearchZhang has published more than 160 highly influential papers. These studies have been cited over 56,000 times (H-index 100),[12] making him one of the top 10 authors of high impact papers in the fields of molecular biology and genetics[13] (ScienceWatch 2008), and one of the "most influential scientific minds"[14] (ScienceWatch 2014). He was also a Founder of Epizyme, and NewStem (Natick, MA). His current efforts are focused on the molecular mechanism of embryonic development & reprogramming, brain reward-related learning & memory, pancreatic cancer. Zhang has made several landmark discoveries in the fields of epigenetics, chromatin and developmental reprogramming.
Honors and recognition
References1. ^1 {{Cite web|url=https://genetics.hms.harvard.edu/person/faculty/yi-zhang|title=Yi Zhang |publisher=Harvard Medical School |access-date=2018-12-10}} 2. ^1 {{Cite web|url=http://www.childrenshospital.org/research/researchers/z/yi-zhang|title=Yi Zhang, PhD |publisher=Boston Children's Hospital |access-date=2018-12-10}} 3. ^1 2 {{Cite web|url=https://www.hhmi.org/scientists/yi-zhang|title=Yi Zhang|publisher=HHMI |access-date=2018-12-10}} 4. ^{{Cite web|url=https://hsci.harvard.edu/people/yi-zhang-phd|title=Yi Zhang, PhD|website=hsci.harvard.edu|language=en|access-date=2018-12-12}} 5. ^{{Cite web|url=https://www.broadinstitute.org/what-broad/history-leadership/founders/our-faculty-associate-members|title=Our faculty: Associate and affiliate members|date=2008-05-08|website=Broad Institute|language=en|access-date=2018-12-12}} 6. ^{{Cite web|url=http://china.caixin.com/2017-07-19/101118558.html|title=张毅:1美元起步的哈佛讲席教授 |work=Caixin |access-date=2018-12-14}} 7. ^{{Cite journal|last=Zhang|first=Y.|last2=Iratni|first2=R.|last3=Erdjument-Bromage|first3=H.|last4=Tempst|first4=P.|last5=Reinberg|first5=D.|date=1997-05-02|title=Histone deacetylases and SAP18, a novel polypeptide, are components of a human Sin3 complex|journal=Cell|volume=89|issue=3|pages=357–364|issn=0092-8674|pmid=9150135}} 8. ^{{Cite journal|last=Zhang|first=Y.|last2=LeRoy|first2=G.|last3=Seelig|first3=H. P.|last4=Lane|first4=W. S.|last5=Reinberg|first5=D.|date=1998-10-16|title=The dermatomyositis-specific autoantigen Mi2 is a component of a complex containing histone deacetylase and nucleosome remodeling activities|journal=Cell|volume=95|issue=2|pages=279–289|issn=0092-8674|pmid=9790534}} 9. ^{{Cite web|url=https://www.the-scientist.com/uncategorized/an-epic-search-43408|title=An Epic Search|website=The Scientist Magazine®|language=en|access-date=2018-12-16}} 10. ^{{Cite web|url=https://www.biocentury.com/biocentury/emerging-company-profile/2010-08-30/epizyme-targeting-cancer-sub-populations-small|title=Epizyme targeting cancer sub-populations with small molecule HMT inhibitors|last=Writer|first=Michael Flanagan Senior|website=BioCentury|language=en|access-date=2018-12-16}} 11. ^{{Cite web|url=https://www.med.unc.edu/biochem/news/yi-zhang-named-as-kenan-distinguished-professor-1/|title=Yi Zhang named as Kenan Distinguished Professor|date=2009-06-04|website=Biochemistry and Biophysics|language=en-US|access-date=2018-12-14}} 12. ^{{Cite web|url=https://scholar.google.com/citations?user=7UjSqHEAAAAJ&hl=en|title=Yi Zhang - Google Scholar Citations|website=scholar.google.com|access-date=2018-12-10}} 13. ^1 {{Cite web|url=http://archive.sciencewatch.com/ana/fea/08janfebFea/|title=Sequencing Biology's Hottest, 2002-06 - ScienceWatch.com|website=archive.sciencewatch.com|access-date=2018-12-10}} 14. ^{{Cite web|url=http://li.mit.edu/A/Activities/14/worlds-most-influential-scientific-minds-2014.pdf|website=li.mit.edu|access-date=2018-12-10}} 15. ^{{Cite journal|last=Wang|first=H.|last2=Huang|first2=Z. Q.|last3=Xia|first3=L.|last4=Feng|first4=Q.|last5=Erdjument-Bromage|first5=H.|last6=Strahl|first6=B. D.|last7=Briggs|first7=S. D.|last8=Allis|first8=C. D.|last9=Wong|first9=J.|date=2001-08-03|title=Methylation of histone H4 at arginine 3 facilitating transcriptional activation by nuclear hormone receptor|journal=Science|volume=293|issue=5531|pages=853–857|doi=10.1126/science.1060781|issn=0036-8075|pmid=11387442}} 16. ^{{Cite journal|last=Feng|first=Qin|last2=Wang|first2=Hengbin|last3=Ng|first3=Huck Hui|last4=Erdjument-Bromage|first4=Hediye|last5=Tempst|first5=Paul|last6=Struhl|first6=Kevin|last7=Zhang|first7=Yi|date=2002-06-25|title=Methylation of H3-lysine 79 is mediated by a new family of HMTases without a SET domain|journal=Current Biology|volume=12|issue=12|pages=1052–1058|issn=0960-9822|pmid=12123582}} 17. ^{{Cite journal|last=Okada|first=Yuki|last2=Feng|first2=Qin|last3=Lin|first3=Yihui|last4=Jiang|first4=Qi|last5=Li|first5=Yaqiang|last6=Coffield|first6=Vernon M.|last7=Su|first7=Lishan|last8=Xu|first8=Guoliang|last9=Zhang|first9=Yi|date=2005-04-22|title=hDOT1L links histone methylation to leukemogenesis|journal=Cell|volume=121|issue=2|pages=167–178|doi=10.1016/j.cell.2005.02.020|issn=0092-8674|pmid=15851025}} 18. ^{{Cite journal|last=Cao|first=Ru|last2=Wang|first2=Liangjun|last3=Wang|first3=Hengbin|last4=Xia|first4=Li|last5=Erdjument-Bromage|first5=Hediye|last6=Tempst|first6=Paul|last7=Jones|first7=Richard S.|last8=Zhang|first8=Yi|date=2002-11-01|title=Role of histone H3 lysine 27 methylation in Polycomb-group silencing|journal=Science|volume=298|issue=5595|pages=1039–1043|doi=10.1126/science.1076997|issn=1095-9203|pmid=12351676|bibcode=2002Sci...298.1039C}} 19. ^{{Cite journal|last=Plath|first=Kathrin|last2=Fang|first2=Jia|last3=Mlynarczyk-Evans|first3=Susanna K.|last4=Cao|first4=Ru|last5=Worringer|first5=Kathleen A.|last6=Wang|first6=Hengbin|last7=de la Cruz|first7=Cecile C.|last8=Otte|first8=Arie P.|last9=Panning|first9=Barbara|date=2003-04-04|title=Role of histone H3 lysine 27 methylation in X inactivation|journal=Science|volume=300|issue=5616|pages=131–135|doi=10.1126/science.1084274|issn=1095-9203|pmid=12649488|bibcode=2003Sci...300..131P}} 20. ^{{Cite journal|last=Umlauf|first=David|last2=Goto|first2=Yuji|last3=Cao|first3=Ru|last4=Cerqueira|first4=Frédérique|last5=Wagschal|first5=Alexandre|last6=Zhang|first6=Yi|last7=Feil|first7=Robert|date=December 2004|title=Imprinting along the Kcnq1 domain on mouse chromosome 7 involves repressive histone methylation and recruitment of Polycomb group complexes|journal=Nature Genetics|volume=36|issue=12|pages=1296–1300|doi=10.1038/ng1467|issn=1061-4036|pmid=15516932}} 21. ^{{Cite journal|last=Wu|first=Susan C.|last2=Kallin|first2=Eric M.|last3=Zhang|first3=Yi|date=October 2010|title=Role of H3K27 methylation in the regulation of lncRNA expression|journal=Cell Research|volume=20|issue=10|pages=1109–1116|doi=10.1038/cr.2010.114|issn=1748-7838|pmc=2949548|pmid=20680032}} 22. ^{{Cite journal|last=Wang|first=Hengbin|last2=Wang|first2=Liangjun|last3=Erdjument-Bromage|first3=Hediye|last4=Vidal|first4=Miguel|last5=Tempst|first5=Paul|last6=Jones|first6=Richard S.|last7=Zhang|first7=Yi|date=2004-10-14|title=Role of histone H2A ubiquitination in Polycomb silencing|journal=Nature|volume=431|issue=7010|pages=873–878|doi=10.1038/nature02985|issn=1476-4687|pmid=15386022|hdl=10261/73732|bibcode=2004Natur.431..873W}} 23. ^{{Cite journal|last=Tsukada|first=Yu-ichi|last2=Fang|first2=Jia|last3=Erdjument-Bromage|first3=Hediye|last4=Warren|first4=Maria E.|last5=Borchers|first5=Christoph H.|last6=Tempst|first6=Paul|last7=Zhang|first7=Yi|date=2006-02-16|title=Histone demethylation by a family of JmjC domain-containing proteins|journal=Nature|volume=439|issue=7078|pages=811–816|doi=10.1038/nature04433|issn=1476-4687|pmid=16362057|bibcode=2006Natur.439..811T}} 24. ^{{Cite journal|last=Klose|first=Robert J.|last2=Yamane|first2=Kenichi|last3=Bae|first3=Yangjin|last4=Zhang|first4=Dianzheng|last5=Erdjument-Bromage|first5=Hediye|last6=Tempst|first6=Paul|last7=Wong|first7=Jiemin|last8=Zhang|first8=Yi|date=2006-07-20|title=The transcriptional repressor JHDM3A demethylates trimethyl histone H3 lysine 9 and lysine 36|url=https://www.ncbi.nlm.nih.gov/pubmed/?term=16732292|journal=Nature|volume=442|issue=7100|pages=312–316|doi=10.1038/nature04853|issn=1476-4687|pmid=16732292|bibcode=2006Natur.442..312K}} 25. ^{{Cite journal|last=Okada|first=Yuki|last2=Scott|first2=Greg|last3=Ray|first3=Manas K.|last4=Mishina|first4=Yuji|last5=Zhang|first5=Yi|date=2007-11-01|title=Histone demethylase JHDM2A is critical for Tnp1 and Prm1 transcription and spermatogenesis|journal=Nature|volume=450|issue=7166|pages=119–123|doi=10.1038/nature06236|issn=1476-4687|pmid=17943087|bibcode=2007Natur.450..119O}} 26. ^{{Cite journal|last=Tateishi|first=Keisuke|last2=Okada|first2=Yuki|last3=Kallin|first3=Eric M.|last4=Zhang|first4=Yi|date=2009-04-09|title=Role of Jhdm2a in regulating metabolic gene expression and obesity resistance|url=https://www.ncbi.nlm.nih.gov/pubmed/?term=19194461|journal=Nature|volume=458|issue=7239|pages=757–761|doi=10.1038/nature07777|issn=1476-4687|pmc=4085783|pmid=19194461|bibcode=2009Natur.458..757T}} 27. ^{{Cite journal|last=Yamane|first=Kenichi|last2=Tateishi|first2=Keisuke|last3=Klose|first3=Robert J.|last4=Fang|first4=Jia|last5=Fabrizio|first5=Laura A.|last6=Erdjument-Bromage|first6=Hediye|last7=Taylor-Papadimitriou|first7=Joyce|last8=Tempst|first8=Paul|last9=Zhang|first9=Yi|date=2007-03-23|title=PLU-1 is an H3K4 demethylase involved in transcriptional repression and breast cancer cell proliferation|journal=Molecular Cell|volume=25|issue=6|pages=801–812|doi=10.1016/j.molcel.2007.03.001|issn=1097-2765|pmid=17363312}} 28. ^{{Cite journal|last=Klose|first=Robert J.|last2=Yan|first2=Qin|last3=Tothova|first3=Zuzana|last4=Yamane|first4=Kenichi|last5=Erdjument-Bromage|first5=Hediye|last6=Tempst|first6=Paul|last7=Gilliland|first7=D. Gary|last8=Zhang|first8=Yi|last9=Kaelin|first9=William G.|date=2007-03-09|title=The retinoblastoma binding protein RBP2 is an H3K4 demethylase|journal=Cell|volume=128|issue=5|pages=889–900|doi=10.1016/j.cell.2007.02.013|issn=0092-8674|pmid=17320163}} 29. ^{{Cite journal|last=Liang|first=Gaoyang|last2=He|first2=Jin|last3=Zhang|first3=Yi|date=2012-04-22|title=Kdm2b promotes induced pluripotent stem cell generation by facilitating gene activation early in reprogramming|url=https://www.ncbi.nlm.nih.gov/pubmed/?term=22522173|journal=Nature Cell Biology|volume=14|issue=5|pages=457–466|doi=10.1038/ncb2483|issn=1476-4679|pmc=3544197|pmid=22522173}} 30. ^{{Cite journal|date=2014-11-06|title=Embryonic Development following Somatic Cell Nuclear Transfer Impeded by Persisting Histone Methylation|url=https://www.sciencedirect.com/science/article/pii/S0092867414012434|journal=Cell|language=en|volume=159|issue=4|pages=884–895|doi=10.1016/j.cell.2014.09.055|pmid=25417163|pmc=4243038|issn=0092-8674|last1=Matoba|first1=Shogo|last2=Liu|first2=Yuting|last3=Lu|first3=Falong|last4=Iwabuchi|first4=Kumiko A.|last5=Shen|first5=Li|last6=Inoue|first6=Azusa|last7=Zhang|first7=Yi}} 31. ^{{Cite journal|last=Chung|first=Young Gie|last2=Matoba|first2=Shogo|last3=Liu|first3=Yuting|last4=Eum|first4=Jin Hee|last5=Lu|first5=Falong|last6=Jiang|first6=Wei|last7=Lee|first7=Jeoung Eun|last8=Sepilian|first8=Vicken|last9=Cha|first9=Kwang Yul|date=2015-12-03|title=Histone Demethylase Expression Enhances Human Somatic Cell Nuclear Transfer Efficiency and Promotes Derivation of Pluripotent Stem Cells|journal=Cell Stem Cell|volume=17|issue=6|pages=758–766|doi=10.1016/j.stem.2015.10.001|issn=1875-9777|pmid=26526725}} 32. ^{{Cite journal|last=Liu|first=Zhen|last2=Cai|first2=Yijun|last3=Wang|first3=Yan|last4=Nie|first4=Yanhong|last5=Zhang|first5=Chenchen|last6=Xu|first6=Yuting|last7=Zhang|first7=Xiaotong|last8=Lu|first8=Yong|last9=Wang|first9=Zhanyang|date=2018-02-08|title=Cloning of Macaque Monkeys by Somatic Cell Nuclear Transfer|journal=Cell|volume=172|issue=4|pages=881–887.e7|doi=10.1016/j.cell.2018.01.020|issn=1097-4172|pmid=29395327}} 33. ^{{Cite journal|last=Ito|first=Shinsuke|last2=D'Alessio|first2=Ana C.|last3=Taranova|first3=Olena V.|last4=Hong|first4=Kwonho|last5=Sowers|first5=Lawrence C.|last6=Zhang|first6=Yi|date=2010-08-26|title=Role of Tet proteins in 5mC to 5hmC conversion, ES-cell self-renewal and inner cell mass specification|url=https://www.ncbi.nlm.nih.gov/pubmed/?term=20639862|journal=Nature|volume=466|issue=7310|pages=1129–1133|doi=10.1038/nature09303|issn=1476-4687|pmc=3491567|pmid=20639862|bibcode=2010Natur.466.1129I}} 34. ^{{Cite journal|last=Ito|first=Shinsuke|last2=Shen|first2=Li|last3=Dai|first3=Qing|last4=Wu|first4=Susan C.|last5=Collins|first5=Leonard B.|last6=Swenberg|first6=James A.|last7=He|first7=Chuan|last8=Zhang|first8=Yi|date=2011-09-02|title=Tet proteins can convert 5-methylcytosine to 5-formylcytosine and 5-carboxylcytosine|url=https://www.ncbi.nlm.nih.gov/pubmed/?term=PMC3495246|journal=Science|volume=333|issue=6047|pages=1300–1303|doi=10.1126/science.1210597|issn=1095-9203|pmc=3495246|pmid=21778364|bibcode=2011Sci...333.1300I}} 35. ^{{Cite journal|last=Shen|first=Li|last2=Wu|first2=Hao|last3=Diep|first3=Dinh|last4=Yamaguchi|first4=Shinpei|last5=D'Alessio|first5=Ana C.|last6=Fung|first6=Ho-Lim|last7=Zhang|first7=Kun|last8=Zhang|first8=Yi|date=2013-04-25|title=Genome-wide analysis reveals TET- and TDG-dependent 5-methylcytosine oxidation dynamics|journal=Cell|volume=153|issue=3|pages=692–706|doi=10.1016/j.cell.2013.04.002|issn=1097-4172|pmc=3687516|pmid=23602152}} 36. ^{{Cite journal|last=Inoue|first=Azusa|last2=Zhang|first2=Yi|date=2011-10-14|title=Replication-dependent loss of 5-hydroxymethylcytosine in mouse preimplantation embryos|journal=Science|volume=334|issue=6053|pages=194|doi=10.1126/science.1212483|issn=1095-9203|pmc=3799877|pmid=21940858|bibcode=2011Sci...334..194I}} 37. ^{{Cite journal|last=Shen|first=Li|last2=Inoue|first2=Azusa|last3=He|first3=Jin|last4=Liu|first4=Yuting|last5=Lu|first5=Falong|last6=Zhang|first6=Yi|date=2014-10-02|title=Tet3 and DNA replication mediate demethylation of both the maternal and paternal genomes in mouse zygotes|journal=Cell Stem Cell|volume=15|issue=4|pages=459–471|doi=10.1016/j.stem.2014.09.002|issn=1875-9777|pmc=4201500|pmid=25280220}} 38. ^{{Cite journal|last=Yamaguchi|first=Shinpei|last2=Hong|first2=Kwonho|last3=Liu|first3=Rui|last4=Shen|first4=Li|last5=Inoue|first5=Azusa|last6=Diep|first6=Dinh|last7=Zhang|first7=Kun|last8=Zhang|first8=Yi|date=2012-12-20|title=Tet1 controls meiosis by regulating meiotic gene expression|journal=Nature|volume=492|issue=7429|pages=443–447|doi=10.1038/nature11709|issn=1476-4687|pmc=3528851|pmid=23151479|bibcode=2012Natur.492..443Y}} 39. ^{{Cite journal|last=Yamaguchi|first=Shinpei|last2=Shen|first2=Li|last3=Liu|first3=Yuting|last4=Sendler|first4=Damian|last5=Zhang|first5=Yi|date=2013-12-19|title=Role of Tet1 in erasure of genomic imprinting|journal=Nature|volume=504|issue=7480|pages=460–464|doi=10.1038/nature12805|issn=1476-4687|pmc=3957231|pmid=24291790|bibcode=2013Natur.504..460Y}} 40. ^{{Cite journal|last=Inoue|first=Azusa|last2=Zhang|first2=Yi|date=July 2014|title=Nucleosome assembly is required for nuclear pore complex assembly in mouse zygotes|journal=Nature Structural & Molecular Biology|volume=21|issue=7|pages=609–616|doi=10.1038/nsmb.2839|issn=1545-9985|pmid=24908396}} 41. ^{{Cite journal|last=Lu|first=Falong|last2=Liu|first2=Yuting|last3=Inoue|first3=Azusa|last4=Suzuki|first4=Tsukasa|last5=Zhao|first5=Keji|last6=Zhang|first6=Yi|date=2016-06-02|title=Establishing Chromatin Regulatory Landscape during Mouse Preimplantation Development|journal=Cell|volume=165|issue=6|pages=1375–1388|doi=10.1016/j.cell.2016.05.050|issn=1097-4172|pmid=27259149}} 42. ^{{Cite journal|last=Inoue|first=Azusa|last2=Jiang|first2=Lan|last3=Lu|first3=Falong|last4=Suzuki|first4=Tsukasa|last5=Zhang|first5=Yi|date=27 July 2017|title=Maternal H3K27me3 controls DNA methylation-independent imprinting|journal=Nature|volume=547|issue=7664|pages=419–424|doi=10.1038/nature23262|issn=1476-4687|pmid=28723896}} 43. ^{{Cite journal|last=Inoue|first=Azusa|last2=Jiang|first2=Lan|last3=Lu|first3=Falong|last4=Zhang|first4=Yi|date=1 October 2017|title=Genomic imprinting of Xist by maternal H3K27me3|journal=Genes & Development|volume=31|issue=19|pages=1927–1932|doi=10.1101/gad.304113.117|issn=1549-5477|pmc=5710138|pmid=29089420}} 44. ^{{Cite journal|last=Inoue|first=Azusa|last2=Chen|first2=Zhiyuan|last3=Yin|first3=Qiangzong|last4=Zhang|first4=Yi|date=1 December 2018|title=Maternal Eed knockout causes loss of H3K27me3 imprinting and random X inactivation in the extraembryonic cells|journal=Genes & Development|volume=32|issue=23–24|pages=1525–1536|doi=10.1101/gad.318675.118|issn=1549-5477|pmid=30463900|pmc=6295166}} 45. ^{{Cite journal|last=Matoba|first=Shogo|last2=Wang|first2=Huihan|last3=Jiang|first3=Lan|last4=Lu|first4=Falong|last5=Iwabuchi|first5=Kumiko A.|last6=Wu|first6=Xiaoji|last7=Inoue|first7=Kimiko|last8=Yang|first8=Lin|last9=Press|first9=William|date=2018-09-06|title=Loss of H3K27me3 Imprinting in Somatic Cell Nuclear Transfer Embryos Disrupts Post-Implantation Development|journal=Cell Stem Cell|volume=23|issue=3|pages=343–354.e5|doi=10.1016/j.stem.2018.06.008|issn=1875-9777|pmid=30033120|pmc=6326833}} 46. ^{{Cite web|url=https://www.aaas.org/fellows/historic|title=Historic Fellows|website=American Association for the Advancement of Science|language=en|access-date=2018-12-10}} 47. ^{{Cite web|url=https://www.cbisociety.org/uploads/3/2/0/1/32012105/cbis_awards_in_2009.pdf|website=www.cbisociety.org|access-date=2018-12-10}} 48. ^{{Cite web|url=https://www.med.unc.edu/biochem/news/yi-zhang-named-as-kenan-distinguished-professor-1/|title=Yi Zhang named as Kenan Distinguished Professor|date=2009-06-04|website=Biochemistry and Biophysics|language=en-US|access-date=2018-12-10}} 49. ^{{Cite news|url=http://www.med.unc.edu/www/newsarchive/2008/july/unc-lineberger-scientist-receives-first-ever-battle-research-award|title=UNC Lineberger scientist receives first-ever Battle Research Award — UNC School of Medicine|access-date=2018-12-10}} 50. ^{{Cite news|url=http://news.unchealthcare.org/news/2004/Sep/hettle04|title=Four faculty members are honored with Hettleman Prize; chancellor to recognize them at Friday Faculty Council — News Room - UNC Health Care|access-date=2018-12-10}} 51. ^{{Cite web|url=https://www.jimmyv.org/grants-awarded/in/2000/|title=Grants Awarded for 2000 • V Foundation|website=V Foundation|language=en-US|access-date=2018-12-10}} External links
14 : Year of birth missing (living people)|Living people|Epigeneticists|Stem cell researchers|Howard Hughes Medical Investigators|Fellows of the American Association for the Advancement of Science|Harvard Medical School faculty|American scientists of Chinese descent|Scientists from Chongqing|Chinese emigrants to the United States|American biochemists|Chinese biochemists|China Agricultural University alumni|Florida State University alumni |
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