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Oncotarget
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April 15, 2017
Specific changes in mitochondrial lipidome alter mitochondrial proteome and increase the geroprotective efficiency of lithocholic acid in chronologically aging yeast
Anna Leonov, Anthony Arlia-Ciommo, Simon D Bourque, et al.
Oncotarget
|
April 18, 2018
Caloric restriction delays yeast chronological aging by remodeling carbohydrate and lipid metabolism, altering peroxisomal and mitochondrial functionalities, and postponing the onsets of apoptotic and liponecrotic modes of regulated cell death
Anthony Arlia-Ciommo, Anna Leonov, Adam Beach, et al.
Cell Cycle (Georgetown, Tex.)
|
April 4, 2015
Lithocholic bile acid accumulated in yeast mitochondria orchestrates a development of an anti-aging cellular pattern by causing age-related changes in cellular proteome
Adam Beach, Vincent R Richard, Simon Bourque, et al.
Oncotarget
|
August 8, 2022
Diverse geroprotectors differently affect a mechanism linking cellular aging to cellular quiescence in budding yeast
Anna Leonov, Rachel Feldman, Amanda Piano, et al.
Oncotarget
|
November 9, 2018
Mechanisms through which lithocholic acid delays yeast chronological aging under caloric restriction conditions
Anthony Arlia-Ciommo, Anna Leonov, Karamat Mohammad, et al.
Aging
|
April 5, 2013
Macromitophagy is a longevity assurance process that in chronologically aging yeast limited in calorie supply sustains functional mitochondria and maintains cellular lipid homeostasis
Vincent R Richard, Anna Leonov, Adam Beach, et al.
Oncotarget
|
October 21, 2017
Caloric restriction extends yeast chronological lifespan via a mechanism linking cellular aging to cell cycle regulation, maintenance of a quiescent state, entry into a non-quiescent state and survival in the non-quiescent state
Anna Leonov, Rachel Feldman, Amanda Piano, et al.
Cell Cycle (Georgetown, Tex.)
|
December 9, 2014
Mechanism of liponecrosis, a distinct mode of programmed cell death
Vincent R Richard, Adam Beach, Amanda Piano, et al.
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Search research articles
Search
Showing results (11-20 of 18) with videos related to
Sort By:
Page
of 2
You have reached the last page of results.
This site can display upto 18 results.
Oncotarget
|
April 15, 2017
Specific changes in mitochondrial lipidome alter mitochondrial proteome and increase the geroprotective efficiency of lithocholic acid in chronologically aging yeast
Anna Leonov, Anthony Arlia-Ciommo, Simon D Bourque, et al.
Oncotarget
|
April 18, 2018
Caloric restriction delays yeast chronological aging by remodeling carbohydrate and lipid metabolism, altering peroxisomal and mitochondrial functionalities, and postponing the onsets of apoptotic and liponecrotic modes of regulated cell death
Anthony Arlia-Ciommo, Anna Leonov, Adam Beach, et al.
Cell Cycle (Georgetown, Tex.)
|
April 4, 2015
Lithocholic bile acid accumulated in yeast mitochondria orchestrates a development of an anti-aging cellular pattern by causing age-related changes in cellular proteome
Adam Beach, Vincent R Richard, Simon Bourque, et al.
Oncotarget
|
August 8, 2022
Diverse geroprotectors differently affect a mechanism linking cellular aging to cellular quiescence in budding yeast
Anna Leonov, Rachel Feldman, Amanda Piano, et al.
Oncotarget
|
November 9, 2018
Mechanisms through which lithocholic acid delays yeast chronological aging under caloric restriction conditions
Anthony Arlia-Ciommo, Anna Leonov, Karamat Mohammad, et al.
Aging
|
April 5, 2013
Macromitophagy is a longevity assurance process that in chronologically aging yeast limited in calorie supply sustains functional mitochondria and maintains cellular lipid homeostasis
Vincent R Richard, Anna Leonov, Adam Beach, et al.
Oncotarget
|
October 21, 2017
Caloric restriction extends yeast chronological lifespan via a mechanism linking cellular aging to cell cycle regulation, maintenance of a quiescent state, entry into a non-quiescent state and survival in the non-quiescent state
Anna Leonov, Rachel Feldman, Amanda Piano, et al.
Cell Cycle (Georgetown, Tex.)
|
December 9, 2014
Mechanism of liponecrosis, a distinct mode of programmed cell death
Vincent R Richard, Adam Beach, Amanda Piano, et al.
Page
of 2