Assessing human germ‐cell mutagenesis in the Postgenome Era: A celebration of the legacy of William Lawson (Bill) Russell
- 15 February 2007
- journal article
- abstracts
- Published by Wiley in Environmental and Molecular Mutagenesis
- Vol. 48 (2) , 71-95
- https://doi.org/10.1002/em.20284
Abstract
Birth defects, de novo genetic diseases, and chromosomal abnormality syndromes occur in ∼5% of all live births, and affected children suffer from a broad range of lifelong health consequences. Despite the social and medical impact of these defects, and the 8 decades of research in animal systems that have identified numerous germ‐cell mutagens, no human germ‐cell mutagen has been confirmed to date. There is now a growing consensus that the inability to detect human germ‐cell mutagens is due to technological limitations in the detection of random mutations rather than biological differences between animal and human susceptibility. A multidisciplinary workshop responding to this challenge convened at The Jackson Laboratory in Bar Harbor, Maine. The purpose of the workshop was to assess the applicability of an emerging repertoire of genomic technologies to studies of human germ‐cell mutagenesis. Workshop participants recommended large‐scale human germ‐cell mutation studies be conducted using samples from donors with high‐dose exposures, such as cancer survivors. Within this high‐risk cohort, parents and children could be evaluated for heritable changes in (a) DNA sequence and chromosomal structure, (b) repeat sequences and minisatellites, and (c) global gene expression profiles and pathways. Participants also advocated the establishment of a bio‐bank of human tissue samples from donors with well‐characterized exposure, including medical and reproductive histories. This mutational resource could support large‐scale, multiple‐endpoint studies. Additional studies could involve the examination of transgenerational effects associated with changes in imprinting and methylation patterns, nucleotide repeats, and mitochondrial DNA mutations. The further development of animal models and the integration of these with human studies are necessary to provide molecular insights into the mechanisms of germ‐cell mutations and to identify prevention strategies. Furthermore, scientific specialty groups should be convened to review and prioritize the evidence for germ‐cell mutagenicity from common environmental, occupational, medical, and lifestyle exposures. Workshop attendees agreed on the need for a full‐scale assault to address key fundamental questions in human germ‐cell environmental mutagenesis. These include, but are not limited to, the following: Do human germ‐cell mutagens exist? What are the risks to future generations? Are some parents at higher risk than others for acquiring and transmitting germ‐cell mutations? Obtaining answers to these, and other critical questions, will require strong support from relevant funding agencies, in addition to the engagement of scientists outside the fields of genomics and germ‐cell mutagenesis. Environ. Mol. Mutagen., 2007. Published 2007 Wiley‐Liss, Inc.Keywords
This publication has 104 references indexed in Scilit:
- Expanded simple tandem repeat (ESTR) mutation induction in the male germline: Lessons learned from lab miceMutation Research - Fundamental and Molecular Mechanisms of Mutagenesis, 2006
- Detection of induced male germline mutation: Correlations and comparisons between traditional germline mutation assays, transgenic rodent assays and expanded simple tandem repeat instability assaysMutation Research - Fundamental and Molecular Mechanisms of Mutagenesis, 2006
- Advancing age has differential effects on DNA damage, chromatin integrity, gene mutations, and aneuploidies in spermProceedings of the National Academy of Sciences, 2006
- A Mitochondrial Paradigm of Metabolic and Degenerative Diseases, Aging, and Cancer: A Dawn for Evolutionary MedicineAnnual Review of Genetics, 2005
- Transcription-independent suppression of DNA synthesis by p53 in sperm-irradiated mouse zygotesOncogene, 2005
- History of the science of mutagenesis from a personal perspectiveEnvironmental and Molecular Mutagenesis, 2004
- Future research directions to study genetic damage in germ cells and estimate genetic risk.Environmental Health Perspectives, 1996
- Why use somatic mutations for human biomonitoring?Environmental and Molecular Mutagenesis, 1994
- Origins of genetic toxicology and the environmental Mutagen SocietyEnvironmental and Molecular Mutagenesis, 1989
- CANCER IN OFFSPRING OF LONG-TERM SURVIVORS OF CHILDHOOD AND ADOLESCENT CANCERThe Lancet, 1987