Cargando…
Aldehyde dehydrogenase 3A1 deficiency leads to mitochondrial dysfunction and impacts salivary gland stem cell phenotype
Adult salivary stem/progenitor cells (SSPC) have an intrinsic property to self-renew in order to maintain tissue architecture and homeostasis. Adult salivary glands have been documented to harbor SSPC, which have been shown to play a vital role in the regeneration of the glandular structures postrad...
Autores principales: | , , , , , , , , , , , , , , , , , , , , , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
Oxford University Press
2022
|
Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9186046/ https://www.ncbi.nlm.nih.gov/pubmed/35707206 http://dx.doi.org/10.1093/pnasnexus/pgac056 |
_version_ | 1784724850019926016 |
---|---|
author | Viswanathan, Vignesh Cao, Hongbin Saiki, Julie Jiang, Dadi Mattingly, Aaron Nambiar, Dhanya Bloomstein, Joshua Li, Yang Jiang, Sizun Chamoli, Manish Sirjani, Davud Kaplan, Michael Holsinger, F Christopher Liang, Rachel Von Eyben, Rie Jiang, Haowen Guan, Li Lagory, Edward Feng, Zhiping Nolan, Garry Ye, Jiangbin Denko, Nicholas Knox, Sarah Rosen, Daria-Mochly Le, Quynh-Thu |
author_facet | Viswanathan, Vignesh Cao, Hongbin Saiki, Julie Jiang, Dadi Mattingly, Aaron Nambiar, Dhanya Bloomstein, Joshua Li, Yang Jiang, Sizun Chamoli, Manish Sirjani, Davud Kaplan, Michael Holsinger, F Christopher Liang, Rachel Von Eyben, Rie Jiang, Haowen Guan, Li Lagory, Edward Feng, Zhiping Nolan, Garry Ye, Jiangbin Denko, Nicholas Knox, Sarah Rosen, Daria-Mochly Le, Quynh-Thu |
author_sort | Viswanathan, Vignesh |
collection | PubMed |
description | Adult salivary stem/progenitor cells (SSPC) have an intrinsic property to self-renew in order to maintain tissue architecture and homeostasis. Adult salivary glands have been documented to harbor SSPC, which have been shown to play a vital role in the regeneration of the glandular structures postradiation damage. We have previously demonstrated that activation of aldehyde dehydrogenase 3A1 (ALDH3A1) after radiation reduced aldehyde accumulation in SSPC, leading to less apoptosis and improved salivary function. We subsequently found that sustained pharmacological ALDH3A1 activation is critical to enhance regeneration of murine submandibular gland after radiation damage. Further investigation shows that ALDH3A1 function is crucial for SSPC self-renewal and survival even in the absence of radiation stress. Salivary glands from Aldh3a1(–/–) mice have fewer acinar structures than wildtype mice. ALDH3A1 deletion or pharmacological inhibition in SSPC leads to a decrease in mitochondrial DNA copy number, lower expression of mitochondrial specific genes and proteins, structural abnormalities, lower membrane potential, and reduced cellular respiration. Loss or inhibition of ALDH3A1 also elevates ROS levels, depletes glutathione pool, and accumulates ALDH3A1 substrate 4-hydroxynonenal (4-HNE, a lipid peroxidation product), leading to decreased survival of murine SSPC that can be rescued by treatment with 4-HNE specific carbonyl scavengers. Our data indicate that ALDH3A1 activity protects mitochondrial function and is important for the regeneration activity of SSPC. This knowledge will help to guide our translational strategy of applying ALDH3A1 activators in the clinic to prevent radiation-related hyposalivation in head and neck cancer patients. |
format | Online Article Text |
id | pubmed-9186046 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2022 |
publisher | Oxford University Press |
record_format | MEDLINE/PubMed |
spelling | pubmed-91860462022-06-13 Aldehyde dehydrogenase 3A1 deficiency leads to mitochondrial dysfunction and impacts salivary gland stem cell phenotype Viswanathan, Vignesh Cao, Hongbin Saiki, Julie Jiang, Dadi Mattingly, Aaron Nambiar, Dhanya Bloomstein, Joshua Li, Yang Jiang, Sizun Chamoli, Manish Sirjani, Davud Kaplan, Michael Holsinger, F Christopher Liang, Rachel Von Eyben, Rie Jiang, Haowen Guan, Li Lagory, Edward Feng, Zhiping Nolan, Garry Ye, Jiangbin Denko, Nicholas Knox, Sarah Rosen, Daria-Mochly Le, Quynh-Thu PNAS Nexus Biological, Health, and Medical Sciences Adult salivary stem/progenitor cells (SSPC) have an intrinsic property to self-renew in order to maintain tissue architecture and homeostasis. Adult salivary glands have been documented to harbor SSPC, which have been shown to play a vital role in the regeneration of the glandular structures postradiation damage. We have previously demonstrated that activation of aldehyde dehydrogenase 3A1 (ALDH3A1) after radiation reduced aldehyde accumulation in SSPC, leading to less apoptosis and improved salivary function. We subsequently found that sustained pharmacological ALDH3A1 activation is critical to enhance regeneration of murine submandibular gland after radiation damage. Further investigation shows that ALDH3A1 function is crucial for SSPC self-renewal and survival even in the absence of radiation stress. Salivary glands from Aldh3a1(–/–) mice have fewer acinar structures than wildtype mice. ALDH3A1 deletion or pharmacological inhibition in SSPC leads to a decrease in mitochondrial DNA copy number, lower expression of mitochondrial specific genes and proteins, structural abnormalities, lower membrane potential, and reduced cellular respiration. Loss or inhibition of ALDH3A1 also elevates ROS levels, depletes glutathione pool, and accumulates ALDH3A1 substrate 4-hydroxynonenal (4-HNE, a lipid peroxidation product), leading to decreased survival of murine SSPC that can be rescued by treatment with 4-HNE specific carbonyl scavengers. Our data indicate that ALDH3A1 activity protects mitochondrial function and is important for the regeneration activity of SSPC. This knowledge will help to guide our translational strategy of applying ALDH3A1 activators in the clinic to prevent radiation-related hyposalivation in head and neck cancer patients. Oxford University Press 2022-06-09 /pmc/articles/PMC9186046/ /pubmed/35707206 http://dx.doi.org/10.1093/pnasnexus/pgac056 Text en © The Author(s) 2022. Published by Oxford University Press on behalf of the National Academy of Sciences. https://creativecommons.org/licenses/by/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited. |
spellingShingle | Biological, Health, and Medical Sciences Viswanathan, Vignesh Cao, Hongbin Saiki, Julie Jiang, Dadi Mattingly, Aaron Nambiar, Dhanya Bloomstein, Joshua Li, Yang Jiang, Sizun Chamoli, Manish Sirjani, Davud Kaplan, Michael Holsinger, F Christopher Liang, Rachel Von Eyben, Rie Jiang, Haowen Guan, Li Lagory, Edward Feng, Zhiping Nolan, Garry Ye, Jiangbin Denko, Nicholas Knox, Sarah Rosen, Daria-Mochly Le, Quynh-Thu Aldehyde dehydrogenase 3A1 deficiency leads to mitochondrial dysfunction and impacts salivary gland stem cell phenotype |
title | Aldehyde dehydrogenase 3A1 deficiency leads to mitochondrial dysfunction and impacts salivary gland stem cell phenotype |
title_full | Aldehyde dehydrogenase 3A1 deficiency leads to mitochondrial dysfunction and impacts salivary gland stem cell phenotype |
title_fullStr | Aldehyde dehydrogenase 3A1 deficiency leads to mitochondrial dysfunction and impacts salivary gland stem cell phenotype |
title_full_unstemmed | Aldehyde dehydrogenase 3A1 deficiency leads to mitochondrial dysfunction and impacts salivary gland stem cell phenotype |
title_short | Aldehyde dehydrogenase 3A1 deficiency leads to mitochondrial dysfunction and impacts salivary gland stem cell phenotype |
title_sort | aldehyde dehydrogenase 3a1 deficiency leads to mitochondrial dysfunction and impacts salivary gland stem cell phenotype |
topic | Biological, Health, and Medical Sciences |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9186046/ https://www.ncbi.nlm.nih.gov/pubmed/35707206 http://dx.doi.org/10.1093/pnasnexus/pgac056 |
work_keys_str_mv | AT viswanathanvignesh aldehydedehydrogenase3a1deficiencyleadstomitochondrialdysfunctionandimpactssalivaryglandstemcellphenotype AT caohongbin aldehydedehydrogenase3a1deficiencyleadstomitochondrialdysfunctionandimpactssalivaryglandstemcellphenotype AT saikijulie aldehydedehydrogenase3a1deficiencyleadstomitochondrialdysfunctionandimpactssalivaryglandstemcellphenotype AT jiangdadi aldehydedehydrogenase3a1deficiencyleadstomitochondrialdysfunctionandimpactssalivaryglandstemcellphenotype AT mattinglyaaron aldehydedehydrogenase3a1deficiencyleadstomitochondrialdysfunctionandimpactssalivaryglandstemcellphenotype AT nambiardhanya aldehydedehydrogenase3a1deficiencyleadstomitochondrialdysfunctionandimpactssalivaryglandstemcellphenotype AT bloomsteinjoshua aldehydedehydrogenase3a1deficiencyleadstomitochondrialdysfunctionandimpactssalivaryglandstemcellphenotype AT liyang aldehydedehydrogenase3a1deficiencyleadstomitochondrialdysfunctionandimpactssalivaryglandstemcellphenotype AT jiangsizun aldehydedehydrogenase3a1deficiencyleadstomitochondrialdysfunctionandimpactssalivaryglandstemcellphenotype AT chamolimanish aldehydedehydrogenase3a1deficiencyleadstomitochondrialdysfunctionandimpactssalivaryglandstemcellphenotype AT sirjanidavud aldehydedehydrogenase3a1deficiencyleadstomitochondrialdysfunctionandimpactssalivaryglandstemcellphenotype AT kaplanmichael aldehydedehydrogenase3a1deficiencyleadstomitochondrialdysfunctionandimpactssalivaryglandstemcellphenotype AT holsingerfchristopher aldehydedehydrogenase3a1deficiencyleadstomitochondrialdysfunctionandimpactssalivaryglandstemcellphenotype AT liangrachel aldehydedehydrogenase3a1deficiencyleadstomitochondrialdysfunctionandimpactssalivaryglandstemcellphenotype AT voneybenrie aldehydedehydrogenase3a1deficiencyleadstomitochondrialdysfunctionandimpactssalivaryglandstemcellphenotype AT jianghaowen aldehydedehydrogenase3a1deficiencyleadstomitochondrialdysfunctionandimpactssalivaryglandstemcellphenotype AT guanli aldehydedehydrogenase3a1deficiencyleadstomitochondrialdysfunctionandimpactssalivaryglandstemcellphenotype AT lagoryedward aldehydedehydrogenase3a1deficiencyleadstomitochondrialdysfunctionandimpactssalivaryglandstemcellphenotype AT fengzhiping aldehydedehydrogenase3a1deficiencyleadstomitochondrialdysfunctionandimpactssalivaryglandstemcellphenotype AT nolangarry aldehydedehydrogenase3a1deficiencyleadstomitochondrialdysfunctionandimpactssalivaryglandstemcellphenotype AT yejiangbin aldehydedehydrogenase3a1deficiencyleadstomitochondrialdysfunctionandimpactssalivaryglandstemcellphenotype AT denkonicholas aldehydedehydrogenase3a1deficiencyleadstomitochondrialdysfunctionandimpactssalivaryglandstemcellphenotype AT knoxsarah aldehydedehydrogenase3a1deficiencyleadstomitochondrialdysfunctionandimpactssalivaryglandstemcellphenotype AT rosendariamochly aldehydedehydrogenase3a1deficiencyleadstomitochondrialdysfunctionandimpactssalivaryglandstemcellphenotype AT lequynhthu aldehydedehydrogenase3a1deficiencyleadstomitochondrialdysfunctionandimpactssalivaryglandstemcellphenotype |