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PMID: 18398465 Published · epublish English Journal Article Research Support, Non-U.S. Gov't

Reconstruction of cell lineage trees in mice.

PloS one ·Vol. 3 ·No. 4 ·2008-04-09 ·Pages e1939

Wasserstrom A, Adar R, Shefer G, Frumkin D, Itzkovitz S, Stern T, Shur I, Zangi L, Kaplan S, Harmelin A, Reisner Y, Benayahu D, Tzahor E, Segal E, Shapiro E

Abstract

The cell lineage tree of a multicellular organism represents its history of cell divisions from the very first cell, the zygote. A new method for high-resolution reconstruction of parts of such cell lineage trees was recently developed based on phylogenetic analysis of somatic mutations accumulated during normal development of an organism. In this study we apply this method in mice to reconstruct the lineage trees of distinct cell types. We address for the first time basic questions in developmental biology of higher organisms, namely what is the correlation between the lineage relation among cells and their (1) function, (2) physical proximity and (3) anatomical proximity. We analyzed B-cells, kidney-, mesenchymal- and hematopoietic-stem cells, as well as satellite cells, which are adult skeletal muscle stem cells isolated from their niche on the muscle fibers (myofibers) from various skeletal muscles. Our results demonstrate that all analyzed cell types are intermingled in the lineage tree, indicating that none of these cell types are single exclusive clones. We also show a significant correlation between the physical proximity of satellite cells within muscles and their lineage. Furthermore, we show that satellite cells obtained from a single myofiber are significantly clustered in the lineage tree, reflecting their common developmental origin. Lineage analysis based on somatic mutations enables performing high resolution reconstruction of lineage trees in mice and humans, which can provide fundamental insights to many aspects of their development and tissue maintenance.

MeSH Terms
Animals B-Lymphocytes/cytology Cell Differentiation Cell Lineage Hematopoietic Stem Cells/cytology Kidney/cytology Killer Cells, Natural/cytology Mesenchymal Stem Cells/cytology Mice Mice, Inbred C57BL Muscle, Skeletal/cytology Mutation Oocytes/metabolism Satellite Cells, Skeletal Muscle/cytology Stem Cells/cytology
Authors & Affiliations
15 authors, click to expand affiliations / ORCID
Wasserstrom Adam
Department of Biological Chemistry, Weizmann Institute of Science, Rehovot, Israel.
Adar Rivka
Shefer Gabi
Frumkin Dan
Itzkovitz Shalev
Stern Tomer
Shur Irena
Zangi Lior
Kaplan Shai
Harmelin Alon
Reisner Yair
Benayahu Dafna
Tzahor Eldad
Segal Eran
Shapiro Ehud
References (35)
35 references, click to expand
  1. Amplification of multiple genomic loci from single cells isolated by laser micro-dissection of tissues.
    BMC Biotechnol. 2008 Feb 20;8:17 PMID: 18284708
  2. Regulation of oocyte maturation. The role of cAMP.
    Ann N Y Acad Sci. 1988;541:211-6 PMID: 2848437
  3. A common somitic origin for embryonic muscle progenitors and satellite cells.
    Nature. 2005 Jun 16;435(7044):954-8 PMID: 15843802
  4. Whole genome amplification: abundant supplies of DNA from precious samples or clinical specimens.
    Trends Biotechnol. 2003 Dec;21(12):531-5 PMID: 14624861
  5. Isolation and characterization of nontubular sca-1+lin- multipotent stem/progenitor cells from adult mouse kidney.
    J Am Soc Nephrol. 2006 Dec;17(12):3300-14 PMID: 17093069
  6. The clonal evolution of tumor cell populations.
    Science. 1976 Oct 1;194(4260):23-8 PMID: 959840
  7. Subpopulations of marrow stromal cells share a variety of osteoblastic markers.
    Calcif Tissue Int. 1991 Sep;49(3):202-7 PMID: 1657328
  8. Genomic variability within an organism exposes its cell lineage tree.
    PLoS Comput Biol. 2005 Oct;1(5):e50 PMID: 16261192
  9. Mouse models for human DNA mismatch-repair gene defects.
    Trends Mol Med. 2002 Jul;8(7):346-53 PMID: 12114115
  10. Heart development: the battle between mesoderm and endoderm.
    Stem Cells Dev. 2007 Feb;16(1):3-5 PMID: 17348801
  11. Estimating cell depth from somatic mutations.
    PLoS Comput Biol. 2008 May 09;4(4):e1000058 PMID: 18404205
  12. Post-embryonic cell lineages of the nematode, Caenorhabditis elegans.
    Dev Biol. 1977 Mar;56(1):110-56 PMID: 838129
  13. Developmental cell lineage.
    Int J Dev Biol. 1998;42(3):237-41 PMID: 9654003
  14. Extensive somatic microsatellite mutations in normal human tissue.
    Cancer Res. 2001 Jun 1;61(11):4541-4 PMID: 11389087
  15. A phylogenetic approach to mapping cell fate.
    Curr Top Dev Biol. 2007;79:157-84 PMID: 17498550
  16. Clonal analysis of epiblast fate during germ layer formation in the mouse embryo.
    Development. 1991 Nov;113(3):891-911 PMID: 1821858
  17. Pax5: the guardian of B cell identity and function.
    Nat Immunol. 2007 May;8(5):463-70 PMID: 17440452
  18. Effect of raloxifene-analog (LY 117018-Hcl) on the bone marrow of ovariectomized mice.
    J Cell Biochem. 2000 Jan;76(3):509-17 PMID: 10649447
  19. Widespread dispersion of neuronal clones across functional regions of the cerebral cortex.
    Science. 1992 Jan 24;255(5043):434-40 PMID: 1734520
  20. Pax3/Pax7 mark a novel population of primitive myogenic cells during development.
    Genes Dev. 2005 Jun 15;19(12):1426-31 PMID: 15964993
  21. Cellular patterning of the vertebrate embryo.
    Trends Genet. 2002 Dec;18(12):627-35 PMID: 12446148
  22. Stem cell function, self-renewal, and behavioral heterogeneity of cells from the adult muscle satellite cell niche.
    Cell. 2005 Jul 29;122(2):289-301 PMID: 16051152
  23. The embryonic cell lineage of the nematode Caenorhabditis elegans.
    Dev Biol. 1983 Nov;100(1):64-119 PMID: 6684600
  24. Resistance to H-2-restricted but not to allo-H2-specific graft and cytotoxic T lymphocyte responses in lymphoma mutant.
    J Immunol. 1990 Jul 1;145(1):52-8 PMID: 2358681
  25. A Pax3/Pax7-dependent population of skeletal muscle progenitor cells.
    Nature. 2005 Jun 16;435(7044):948-53 PMID: 15843801
  26. Self-renewal of the adult skeletal muscle satellite cell.
    Cell Cycle. 2005 Oct;4(10):1338-41 PMID: 16177569
  27. Phylogenetic fate mapping.
    Proc Natl Acad Sci U S A. 2006 Apr 4;103(14):5448-53 PMID: 16569691
  28. Involvement of mouse Mlh1 in DNA mismatch repair and meiotic crossing over.
    Nat Genet. 1996 Jul;13(3):336-42 PMID: 8673133
  29. Muscle regeneration by bone marrow-derived myogenic progenitors.
    Science. 1998 Mar 6;279(5356):1528-30 PMID: 9488650
  30. Skeletal myogenic progenitors originating from embryonic dorsal aorta coexpress endothelial and myogenic markers and contribute to postnatal muscle growth and regeneration.
    J Cell Biol. 1999 Nov 15;147(4):869-78 PMID: 10562287
  31. Skeletal muscle satellite cells can spontaneously enter an alternative mesenchymal pathway.
    J Cell Sci. 2004 Oct 15;117(Pt 22):5393-404 PMID: 15466890
  32. Chimeric-transgenic mice represent a powerful tool for studying how the proliferation and differentiation programs of intestinal epithelial cell lineages are regulated.
    Proc Natl Acad Sci U S A. 1993 Oct 1;90(19):8866-70 PMID: 8415622
  33. Fate maps old and new.
    Nat Cell Biol. 1999 Aug;1(4):E103-9 PMID: 10559935
  34. Boundaries in development: formation and function.
    Annu Rev Cell Dev Biol. 2001;17:189-214 PMID: 11687488
  35. Mutation selection and the natural history of cancer.
    Nature. 1975 May 15;255(5505):197-200 PMID: 1143315
Article Info
Journal
PloS one
Abbr.
PLoS One
ISSN
1932-6203
Published
2008-04-09
Epub
2008-00-09
Pages
e1939
Language
English
Region
United States
NLM ID
101285081
PMCID
PMC2276688
Subset
IM
Corrections
CommentIn
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