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Molecular Cell|April 15, 2014
Nonenzymatic protein acylation as a carbon stress regulated by sirtuin deacylasesGregory R Wagner, Matthew D HirscheyBiorxiv : the Preprint Server for Biology|February 23, 2026
datadrivenhypothesis.org: A resource for metabolic gene discovery through integrated pathway co-essentiality mappingMatthew D Hirschey, Pol Castellano-Escuder, John BradleyTrends in Endocrinology and Metabolism: TEM|November 17, 2018
Sensing Mitochondrial Acetyl-CoA to Tune RespirationChristine A Mills, Alec G Trub, Matthew D HirscheyDiabetes Management (London, England)|July 29, 2014
Targeting sirtuins for the treatment of diabetesFrank K Huynh, Kathleen A Hershberger, Matthew D HirscheyNature Reviews. Nephrology|February 7, 2017
Role of NAD+ and mitochondrial sirtuins in cardiac and renal diseasesKathleen A Hershberger, Angelical S Martin, Matthew D HirscheyMolecular Cell|April 2, 2021
Discovering the landscape of protein modificationsE Keith Keenan, Derek K Zachman, Matthew D HirscheyMethods in Enzymology|May 12, 2009
Acetylation of mitochondrial proteinsMatthew D Hirschey, Tadahiro Shimazu, Jing-Yi Huang, et al.Methods in Molecular Biology (Clifton, N.J.)|September 10, 2013
Oxygen flux analysis to understand the biological function of sirtuinsDongning Wang, Michelle F Green, Eoin McDonnell, et al.Trends in Endocrinology and Metabolism: TEM|July 4, 2015
SIRT3 regulates progression and development of diseases of agingEoin McDonnell, Brett S Peterson, Howard M Bomze, et al.Cell Metabolism|November 27, 2010
Calorie restriction reduces oxidative stress by SIRT3-mediated SOD2 activationXiaolei Qiu, Katharine Brown, Matthew D Hirschey, et al.Pageof 10