Skip to main content
bioRxiv
  • Home
  • About
  • Submit
  • ALERTS / RSS
Advanced Search
New Results

Gene Therapy Mediated Partial Reprogramming Extends Lifespan and Reverses Age-Related Changes in Aged Mice

Carolina Cano Macip, Rokib Hasan, Victoria Hoznek, Jihyun Kim, Louis E. Metzger IV, Saumil Sethna, Noah Davidsohn
doi: https://doi.org/10.1101/2023.01.04.522507
Carolina Cano Macip
1Rejuvenate Bio, 3560 Dunhill St, San Diego, CA 92121
  • Find this author on Google Scholar
  • Find this author on PubMed
  • Search for this author on this site
Rokib Hasan
1Rejuvenate Bio, 3560 Dunhill St, San Diego, CA 92121
  • Find this author on Google Scholar
  • Find this author on PubMed
  • Search for this author on this site
Victoria Hoznek
1Rejuvenate Bio, 3560 Dunhill St, San Diego, CA 92121
  • Find this author on Google Scholar
  • Find this author on PubMed
  • Search for this author on this site
Jihyun Kim
1Rejuvenate Bio, 3560 Dunhill St, San Diego, CA 92121
  • Find this author on Google Scholar
  • Find this author on PubMed
  • Search for this author on this site
Louis E. Metzger IV
1Rejuvenate Bio, 3560 Dunhill St, San Diego, CA 92121
  • Find this author on Google Scholar
  • Find this author on PubMed
  • Search for this author on this site
Saumil Sethna
1Rejuvenate Bio, 3560 Dunhill St, San Diego, CA 92121
  • Find this author on Google Scholar
  • Find this author on PubMed
  • Search for this author on this site
  • For correspondence: saumil@rejuvenatebio.com noah@rejuvenatebio.com
Noah Davidsohn
1Rejuvenate Bio, 3560 Dunhill St, San Diego, CA 92121
  • Find this author on Google Scholar
  • Find this author on PubMed
  • Search for this author on this site
  • For correspondence: saumil@rejuvenatebio.com noah@rejuvenatebio.com
  • Abstract
  • Full Text
  • Info/History
  • Metrics
  • Preview PDF
Loading

Abstract

Aging is a complex process best characterized as the chronic dysregulation of cellular processes leading to deteriorated tissue and organ function. While aging cannot currently be prevented, its impact on lifespan and healthspan in the elderly can potentially be minimized by interventions that aim to return these cellular processes to optimal function. Recent studies have demonstrated that partial reprogramming using the Yamanaka factors (or a subset; OCT4, SOX2, and KLF4; OSK) can reverse age-related changes in vitro and in vivo. However, it is still unknown whether the Yamanaka factors (or a subset) are capable of extending the lifespan of aged wild type mice. Here, we show that systemically delivered AAVs, encoding an inducible OSK system, in 124-week-old mice extends the median remaining lifespan by 109% over wild-type controls and enhances several health parameters. Importantly, we observed a significant improvement in frailty scores indicating that we were able to improve the healthspan along with increasing the lifespan. Furthermore, in human keratinocytes expressing exogenous OSK, we observed significant epigenetic markers of age-reversal, suggesting a potential reregulation of genetic networks to a younger, potentially healthier state. Together, these results may have important implications for the development of partial reprogramming interventions to reverse age-associated diseases in the elderly.

Competing Interest Statement

All authors performed the work while employed at Rejuvenate Bio Inc. Rejuvenate Bio is a therapeutics company translating gene therapies to treat age-related diseases.

Footnotes

  • “This material is based upon work supported by The United States Special Operations Command under Contract No. H9240521C0015. Any opinions, findings and conclusions or recommendations expressed in this material are those of the author(s) and do not necessarily reflect the views of The United States Special Operations Command.” The above statements have been added to the Acknowledgements section.

Copyright 
The copyright holder for this preprint is the author/funder, who has granted bioRxiv a license to display the preprint in perpetuity. All rights reserved. No reuse allowed without permission.
Back to top
PreviousNext
Posted January 27, 2023.
Download PDF
Email

Thank you for your interest in spreading the word about bioRxiv.

NOTE: Your email address is requested solely to identify you as the sender of this article.

Enter multiple addresses on separate lines or separate them with commas.
Gene Therapy Mediated Partial Reprogramming Extends Lifespan and Reverses Age-Related Changes in Aged Mice
(Your Name) has forwarded a page to you from bioRxiv
(Your Name) thought you would like to see this page from the bioRxiv website.
CAPTCHA
This question is for testing whether or not you are a human visitor and to prevent automated spam submissions.
Share
Gene Therapy Mediated Partial Reprogramming Extends Lifespan and Reverses Age-Related Changes in Aged Mice
Carolina Cano Macip, Rokib Hasan, Victoria Hoznek, Jihyun Kim, Louis E. Metzger IV, Saumil Sethna, Noah Davidsohn
bioRxiv 2023.01.04.522507; doi: https://doi.org/10.1101/2023.01.04.522507
Reddit logo Twitter logo Facebook logo LinkedIn logo Mendeley logo
Citation Tools
Gene Therapy Mediated Partial Reprogramming Extends Lifespan and Reverses Age-Related Changes in Aged Mice
Carolina Cano Macip, Rokib Hasan, Victoria Hoznek, Jihyun Kim, Louis E. Metzger IV, Saumil Sethna, Noah Davidsohn
bioRxiv 2023.01.04.522507; doi: https://doi.org/10.1101/2023.01.04.522507

Citation Manager Formats

  • BibTeX
  • Bookends
  • EasyBib
  • EndNote (tagged)
  • EndNote 8 (xml)
  • Medlars
  • Mendeley
  • Papers
  • RefWorks Tagged
  • Ref Manager
  • RIS
  • Zotero
  • Tweet Widget
  • Facebook Like
  • Google Plus One

Subject Area

  • Bioengineering
Subject Areas
All Articles
  • Animal Behavior and Cognition (4225)
  • Biochemistry (9101)
  • Bioengineering (6750)
  • Bioinformatics (23941)
  • Biophysics (12087)
  • Cancer Biology (9493)
  • Cell Biology (13738)
  • Clinical Trials (138)
  • Developmental Biology (7614)
  • Ecology (11659)
  • Epidemiology (2066)
  • Evolutionary Biology (15477)
  • Genetics (10616)
  • Genomics (14293)
  • Immunology (9460)
  • Microbiology (22774)
  • Molecular Biology (9069)
  • Neuroscience (48851)
  • Paleontology (354)
  • Pathology (1479)
  • Pharmacology and Toxicology (2564)
  • Physiology (3822)
  • Plant Biology (8308)
  • Scientific Communication and Education (1467)
  • Synthetic Biology (2289)
  • Systems Biology (6171)
  • Zoology (1297)