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Time-course analysis of the effect of embedded metal on skeletal muscle gene expression

  • Yuan Wen
  • , Ivan J. Vechetti
  • , Alexander P. Alimov
  • , Jessica F. Hoffman
  • , Vernieda B. Vergara
  • , John F. Kalinich
  • , John J. McCarthy
  • , Charlotte A. Peterson

Producción científica: Articlerevisión exhaustiva

10 Citas (Scopus)

Resumen

As a consequence of military operations, many veterans suffer from penetrating wounds and long-term retention of military-grade heavy metal fragments. Fragments vary in size and location, and complete surgical removal may not be feasible or beneficial in all cases. Increasing evidence suggests retention of heavy metal fragments may have serious biological implications, including increased risks for malignant transformation. Previous studies assessed the tumorigenic effects of metal alloys in rats, demonstrating combinations of metals are sufficient to induce tumor formation after prolonged retention in skeletal muscle tissue. In this study, we analyzed transcriptional changes in skeletal muscle tissue in response to eight different military-relevant pure metals over 12 mo. We found that most transcriptional changes occur at 1 and 3 mo after metal pellets are embedded in skeletal muscle and these effects resolve at 6 and 12 mo. We also report significant immunogenic effects of nickel and cobalt and suppressive effects of lead and depleted uranium on gene expression. Overall, skeletal muscle exhibits a remarkable capacity to adapt to and recover from internalized metal fragments; however, the cellular response to chronic exposure may be restricted to the metal-tissue interface. These data suggest that unless affected regions are specifically captured by biopsy, it would be difficult to reliably detect changes in muscle gene expression that would be indicative of long-term adverse health outcomes.

Idioma originalEnglish
Páginas (desde-hasta)575-587
Número de páginas13
PublicaciónPhysiological Genomics
Volumen52
N.º12
DOI
EstadoPublished - 2020

Nota bibliográfica

Publisher Copyright:
© 2020, American Physiological Society. All rights reserved.

Financiación

This work was supported by Grant W81XWH-16-2-0058 from the Peer Reviewed Medical Research Program of the Congressionally Directed Medical Research Program. The views expressed in the paper are those of the authors and do not reflect the official policy or position of the Armed Forces Radiobiology Research Institute, the Uniformed Services University, the Department of Defense, or the US Government. The authors thank Raisa Marshall, Anya Fan, and William Danchanko for expertise in the pellet implantation surgeries, animal welfare checks, and tissue collection and thank W. Louis Wilkins for histopathology support. GRANTS This work was supported by Grant W81XWH-16-2-0058 from the Peer Reviewed Medical Research Program of the Congressionally Directed Medical Research Program. The views expressed in the paper are those of the authors and do not reflect the official policy or position of the Armed Forces Radiobiology Research Institute, the Uniformed Services University, the Department of Defense, or the US Government.

FinanciadoresNúmero del financiador
Raisa Marshall, Anya FanW81XWH-16-2-0058
US Government or NYU
Congressionally Directed Medical Research Programs
Uniformed Services University of the Health Sciences
Armed Forces Radiobiology Research Institute, Uniformed Services University

    ASJC Scopus subject areas

    • Physiology
    • Genetics

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