Home LiteratureArticle Details
PMID: 27698416 Published · ppublish English Journal Article

Tissue-specific mutation accumulation in human adult stem cells during life.

Nature ·Vol. 538 ·No. 7624 ·2016-10-13 ·Pages 260-264

Blokzijl F, de Ligt J, Jager M, Sasselli V, Roerink S, Sasaki N, Huch M, Boymans S, Kuijk E, Prins P, Nijman IJ, Martincorena I, Mokry M, Wiegerinck CL, Middendorp S, Sato T, Schwank G, Nieuwenhuis EE, Verstegen MM, van der Laan LJ, de Jonge J, IJzermans JN, Vries RG, van de Wetering M, Stratton MR, Clevers H, Cuppen E, van Boxtel R

Abstract

The gradual accumulation of genetic mutations in human adult stem cells (ASCs) during life is associated with various age-related diseases, including cancer. Extreme variation in cancer risk across tissues was recently proposed to depend on the lifetime number of ASC divisions, owing to unavoidable random mutations that arise during DNA replication. However, the rates and patterns of mutations in normal ASCs remain unknown. Here we determine genome-wide mutation patterns in ASCs of the small intestine, colon and liver of human donors with ages ranging from 3 to 87 years by sequencing clonal organoid cultures derived from primary multipotent cells. Our results show that mutations accumulate steadily over time in all of the assessed tissue types, at a rate of approximately 40 novel mutations per year, despite the large variation in cancer incidence among these tissues. Liver ASCs, however, have different mutation spectra compared to those of the colon and small intestine. Mutational signature analysis reveals that this difference can be attributed to spontaneous deamination of methylated cytosine residues in the colon and small intestine, probably reflecting their high ASC division rate. In liver, a signature with an as-yet-unknown underlying mechanism is predominant. Mutation spectra of driver genes in cancer show high similarity to the tissue-specific ASC mutation spectra, suggesting that intrinsic mutational processes in ASCs can initiate tumorigenesis. Notably, the inter-individual variation in mutation rate and spectra are low, suggesting tissue-specific activity of common mutational processes throughout life.

MeSH Terms
Adolescent Adult Adult Stem Cells/metabolism Aged Aged, 80 and over Aging/genetics Animals Child Child, Preschool Colon/metabolism DNA Mutational Analysis Female Genes, Neoplasm/genetics Humans Incidence Intestine, Small/metabolism Liver/metabolism Male Mice Middle Aged Multipotent Stem Cells/metabolism Mutation Accumulation Mutation Rate Neoplasms/epidemiology,genetics Organ Specificity Organoids/metabolism Point Mutation/genetics Young Adult
Authors & Affiliations
28 authors, click to expand affiliations / ORCID
Blokzijl Francis
Center for Molecular Medicine, Cancer Genomics Netherlands, Department of Genetics, University Medical Center Utrecht, Heidelberglaan 100, 3584CX Utrecht, The Netherlands. | Hubrecht Institute for Developmental Biology and Stem Cell Research, KNAW and University Medical Center Utrecht, Uppsalalaan 8, 3584CT Utrecht, The Netherlands.
de Ligt Joep
Center for Molecular Medicine, Cancer Genomics Netherlands, Department of Genetics, University Medical Center Utrecht, Heidelberglaan 100, 3584CX Utrecht, The Netherlands. | Hubrecht Institute for Developmental Biology and Stem Cell Research, KNAW and University Medical Center Utrecht, Uppsalalaan 8, 3584CT Utrecht, The Netherlands.
Jager Myrthe
Center for Molecular Medicine, Cancer Genomics Netherlands, Department of Genetics, University Medical Center Utrecht, Heidelberglaan 100, 3584CX Utrecht, The Netherlands. | Hubrecht Institute for Developmental Biology and Stem Cell Research, KNAW and University Medical Center Utrecht, Uppsalalaan 8, 3584CT Utrecht, The Netherlands.
Sasselli Valentina
Hubrecht Institute for Developmental Biology and Stem Cell Research, KNAW and University Medical Center Utrecht, Uppsalalaan 8, 3584CT Utrecht, The Netherlands.
Roerink Sophie
Cancer Genome Project, Wellcome Trust Sanger Institute, Wellcome Trust Genome Campus, Hinxton, Cambridgeshire CB10 1SA, UK.
Sasaki Nobuo
Hubrecht Institute for Developmental Biology and Stem Cell Research, KNAW and University Medical Center Utrecht, Uppsalalaan 8, 3584CT Utrecht, The Netherlands.
Huch Meritxell
Hubrecht Institute for Developmental Biology and Stem Cell Research, KNAW and University Medical Center Utrecht, Uppsalalaan 8, 3584CT Utrecht, The Netherlands.
Boymans Sander
Center for Molecular Medicine, Cancer Genomics Netherlands, Department of Genetics, University Medical Center Utrecht, Heidelberglaan 100, 3584CX Utrecht, The Netherlands. | Hubrecht Institute for Developmental Biology and Stem Cell Research, KNAW and University Medical Center Utrecht, Uppsalalaan 8, 3584CT Utrecht, The Netherlands.
Kuijk Ewart
Center for Molecular Medicine, Cancer Genomics Netherlands, Department of Genetics, University Medical Center Utrecht, Heidelberglaan 100, 3584CX Utrecht, The Netherlands. | Hubrecht Institute for Developmental Biology and Stem Cell Research, KNAW and University Medical Center Utrecht, Uppsalalaan 8, 3584CT Utrecht, The Netherlands.
Prins Pjotr
Hubrecht Institute for Developmental Biology and Stem Cell Research, KNAW and University Medical Center Utrecht, Uppsalalaan 8, 3584CT Utrecht, The Netherlands.
Nijman Isaac J
Hubrecht Institute for Developmental Biology and Stem Cell Research, KNAW and University Medical Center Utrecht, Uppsalalaan 8, 3584CT Utrecht, The Netherlands.
Martincorena Inigo
Cancer Genome Project, Wellcome Trust Sanger Institute, Wellcome Trust Genome Campus, Hinxton, Cambridgeshire CB10 1SA, UK.
Mokry Michal
Department of Pediatrics, University Medical Center Utrecht, Lundlaan 6, 3584 EA Utrecht, The Netherlands.
Wiegerinck Caroline L
Department of Pediatrics, University Medical Center Utrecht, Lundlaan 6, 3584 EA Utrecht, The Netherlands.
Middendorp Sabine
Department of Pediatrics, University Medical Center Utrecht, Lundlaan 6, 3584 EA Utrecht, The Netherlands.
Sato Toshiro
Hubrecht Institute for Developmental Biology and Stem Cell Research, KNAW and University Medical Center Utrecht, Uppsalalaan 8, 3584CT Utrecht, The Netherlands.
Schwank Gerald
Hubrecht Institute for Developmental Biology and Stem Cell Research, KNAW and University Medical Center Utrecht, Uppsalalaan 8, 3584CT Utrecht, The Netherlands.
Nieuwenhuis Edward E S
Department of Pediatrics, University Medical Center Utrecht, Lundlaan 6, 3584 EA Utrecht, The Netherlands.
Verstegen Monique M A
Department of Surgery, Erasmus MC-University Medical Center, Postbus 2040, 3000 CA Rotterdam, The Netherlands.
van der Laan Luc J W
Department of Surgery, Erasmus MC-University Medical Center, Postbus 2040, 3000 CA Rotterdam, The Netherlands.
de Jonge Jeroen
Department of Surgery, Erasmus MC-University Medical Center, Postbus 2040, 3000 CA Rotterdam, The Netherlands.
IJzermans Jan N M
Department of Surgery, Erasmus MC-University Medical Center, Postbus 2040, 3000 CA Rotterdam, The Netherlands.
Vries Robert G
Foundation Hubrecht Organoid Technology (HUB), Uppsalalaan 8, 3584CT Utrecht, The Netherlands.
van de Wetering Marc
Hubrecht Institute for Developmental Biology and Stem Cell Research, KNAW and University Medical Center Utrecht, Uppsalalaan 8, 3584CT Utrecht, The Netherlands.
Stratton Michael R
Cancer Genome Project, Wellcome Trust Sanger Institute, Wellcome Trust Genome Campus, Hinxton, Cambridgeshire CB10 1SA, UK.
Clevers Hans
Hubrecht Institute for Developmental Biology and Stem Cell Research, KNAW and University Medical Center Utrecht, Uppsalalaan 8, 3584CT Utrecht, The Netherlands.
Cuppen Edwin
Center for Molecular Medicine, Cancer Genomics Netherlands, Department of Genetics, University Medical Center Utrecht, Heidelberglaan 100, 3584CX Utrecht, The Netherlands. | Hubrecht Institute for Developmental Biology and Stem Cell Research, KNAW and University Medical Center Utrecht, Uppsalalaan 8, 3584CT Utrecht, The Netherlands.
van Boxtel Ruben
Center for Molecular Medicine, Cancer Genomics Netherlands, Department of Genetics, University Medical Center Utrecht, Heidelberglaan 100, 3584CX Utrecht, The Netherlands. | Hubrecht Institute for Developmental Biology and Stem Cell Research, KNAW and University Medical Center Utrecht, Uppsalalaan 8, 3584CT Utrecht, The Netherlands.
References (40)
40 references, click to expand
  1. Tumor evolution. High burden and pervasive positive selection of somatic mutations in normal human skin.
    Science. 2015 May 22;348(6237):880-6 PMID: 25999502
  2. A comprehensive catalogue of somatic mutations from a human cancer genome.
    Nature. 2010 Jan 14;463(7278):191-6 PMID: 20016485
  3. Evolution of the mutation rate.
    Trends Genet. 2010 Aug;26(8):345-52 PMID: 20594608
  4. The cancer genome.
    Nature. 2009 Apr 9;458(7239):719-24 PMID: 19360079
  5. Stems cells and the pathways to aging and cancer.
    Cell. 2008 Feb 22;132(4):681-96 PMID: 18295583
  6. Control-FREEC: a tool for assessing copy number and allelic content using next-generation sequencing data.
    Bioinformatics. 2012 Feb 1;28(3):423-5 PMID: 22155870
  7. Chromatin organization is a major influence on regional mutation rates in human cancer cells.
    Nature. 2012 Aug 23;488(7412):504-7 PMID: 22820252
  8. Clonal hematopoiesis and blood-cancer risk inferred from blood DNA sequence.
    N Engl J Med. 2014 Dec 25;371(26):2477-87 PMID: 25426838
  9. Age-related somatic mutations in the cancer genome.
    Oncotarget. 2015 Sep 22;6(28):24627-35 PMID: 26384365
  10. Long-term culture of genome-stable bipotent stem cells from adult human liver.
    Cell. 2015 Jan 15;160(1-2):299-312 PMID: 25533785
  11. Cancer etiology. Variation in cancer risk among tissues can be explained by the number of stem cell divisions.
    Science. 2015 Jan 2;347(6217):78-81 PMID: 25554788
  12. Repbase update: a database and an electronic journal of repetitive elements.
    Trends Genet. 2000 Sep;16(9):418-20 PMID: 10973072
  13. dbSNP: the NCBI database of genetic variation.
    Nucleic Acids Res. 2001 Jan 1;29(1):308-11 PMID: 11125122
  14. Genome sequencing of normal cells reveals developmental lineages and mutational processes.
    Nature. 2014 Sep 18;513(7518):422-5 PMID: 25043003
  15. An integrated encyclopedia of DNA elements in the human genome.
    Nature. 2012 Sep 6;489(7414):57-74 PMID: 22955616
  16. Substantial contribution of extrinsic risk factors to cancer development.
    Nature. 2016 Jan 7;529(7584):43-7 PMID: 26675728
  17. DELLY: structural variant discovery by integrated paired-end and split-read analysis.
    Bioinformatics. 2012 Sep 15;28(18):i333-i339 PMID: 22962449
  18. Deciphering signatures of mutational processes operative in human cancer.
    Cell Rep. 2013 Jan 31;3(1):246-59 PMID: 23318258
  19. Differential DNA mismatch repair underlies mutation rate variation across the human genome.
    Nature. 2015 May 7;521(7550):81-4 PMID: 25707793
  20. Molecular genetics of colorectal cancer.
    Annu Rev Pathol. 2011;6:479-507 PMID: 21090969
  21. Long-term expansion of epithelial organoids from human colon, adenoma, adenocarcinoma, and Barrett's epithelium.
    Gastroenterology. 2011 Nov;141(5):1762-72 PMID: 21889923
  22. Crypt stem cells as the cells-of-origin of intestinal cancer.
    Nature. 2009 Jan 29;457(7229):608-11 PMID: 19092804
  23. A framework for variation discovery and genotyping using next-generation DNA sequencing data.
    Nat Genet. 2011 May;43(5):491-8 PMID: 21478889
  24. Single-cell exome sequencing and monoclonal evolution of a JAK2-negative myeloproliferative neoplasm.
    Cell. 2012 Mar 2;148(5):873-85 PMID: 22385957
  25. Signatures of mutational processes in human cancer.
    Nature. 2013 Aug 22;500(7463):415-21 PMID: 23945592
  26. Clock-like mutational processes in human somatic cells.
    Nat Genet. 2015 Dec;47(12):1402-7 PMID: 26551669
  27. Age-related mutations associated with clonal hematopoietic expansion and malignancies.
    Nat Med. 2014 Dec;20(12):1472-8 PMID: 25326804
  28. Sambamba: fast processing of NGS alignment formats.
    Bioinformatics. 2015 Jun 15;31(12):2032-4 PMID: 25697820
  29. Mutational fingerprints of aging.
    Nucleic Acids Res. 2002 Jan 15;30(2):545-9 PMID: 11788717
  30. A flexible R package for nonnegative matrix factorization.
    BMC Bioinformatics. 2010 Jul 02;11:367 PMID: 20598126
  31. Ensembl 2015.
    Nucleic Acids Res. 2015 Jan;43(Database issue):D662-9 PMID: 25352552
  32. Age-related clonal hematopoiesis associated with adverse outcomes.
    N Engl J Med. 2014 Dec 25;371(26):2488-98 PMID: 25426837
  33. Single Lgr5 stem cells build crypt-villus structures in vitro without a mesenchymal niche.
    Nature. 2009 May 14;459(7244):262-5 PMID: 19329995
  34. Fast and accurate short read alignment with Burrows-Wheeler transform.
    Bioinformatics. 2009 Jul 15;25(14):1754-60 PMID: 19451168
  35. The UCSC Genome Browser database: 2015 update.
    Nucleic Acids Res. 2015 Jan;43(Database issue):D670-81 PMID: 25428374
  36. Distinct spectra of somatic mutations accumulated with age in mouse heart and small intestine.
    Proc Natl Acad Sci U S A. 2000 Jul 18;97(15):8403-8 PMID: 10900004
  37. Common fragile site profiling in epithelial and erythroid cells reveals that most recurrent cancer deletions lie in fragile sites hosting large genes.
    Cell Rep. 2013 Aug 15;4(3):420-8 PMID: 23911288
  38. Software for computing and annotating genomic ranges.
    PLoS Comput Biol. 2013;9(8):e1003118 PMID: 23950696
  39. CNVnator: an approach to discover, genotype, and characterize typical and atypical CNVs from family and population genome sequencing.
    Genome Res. 2011 Jun;21(6):974-84 PMID: 21324876
  40. Determination of hprt mutant frequencies in T-lymphocytes from a healthy pediatric population: statistical comparison between newborn, children and adult mutant frequencies, cloning efficiency and age.
    Mutat Res. 1994 Jul 16;308(2):223-31 PMID: 7518049
Article Info
Journal
Nature
Abbr.
Nature
ISSN
1476-4687
Published
2016-10-13
Epub
2016-00-03
Pages
260-264
Language
English
Region
England
NLM ID
0410462
PMCID
PMC5536223
Subset
IM
Grants
Worldwide Cancer Research · 16-0193 · United Kingdom
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: [email protected]