In vitro and in vivo detection of mitophagy in human cells, C. elegans, and mice.

Mitochondria are the powerhouses of cells and produce cellular energy in the form of ATP. Mitochondrial dysfunction contributes to biological aging and a wide variety of disorders including metabolic diseases, premature aging syndromes, and neurodegenerative diseases such as Alzheimer's disease...

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主要な著者: Fang, EF, Palikaras, K, Sun, N, Fivenson, EM, Spangler, RD, Kerr, JS, Cordonnier, SA, Hou, Y, Dombi, E, Kassahun, H, Tavernarakis, N, Poulton, J, Nilsen, H, Bohr, VA
フォーマット: Journal article
言語:English
出版事項: Journal of Visualized Experiments 2017
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author Fang, EF
Palikaras, K
Sun, N
Fivenson, EM
Spangler, RD
Kerr, JS
Cordonnier, SA
Hou, Y
Dombi, E
Kassahun, H
Tavernarakis, N
Poulton, J
Nilsen, H
Bohr, VA
author_facet Fang, EF
Palikaras, K
Sun, N
Fivenson, EM
Spangler, RD
Kerr, JS
Cordonnier, SA
Hou, Y
Dombi, E
Kassahun, H
Tavernarakis, N
Poulton, J
Nilsen, H
Bohr, VA
author_sort Fang, EF
collection OXFORD
description Mitochondria are the powerhouses of cells and produce cellular energy in the form of ATP. Mitochondrial dysfunction contributes to biological aging and a wide variety of disorders including metabolic diseases, premature aging syndromes, and neurodegenerative diseases such as Alzheimer's disease (AD) and Parkinson's disease (PD). Maintenance of mitochondrial health depends on mitochondrial biogenesis and the efficient clearance of dysfunctional mitochondria through mitophagy. Experimental methods to accurately detect autophagy/mitophagy, especially in animal models, have been challenging to develop. Recent progress towards the understanding of the molecular mechanisms of mitophagy has enabled the development of novel mitophagy detection techniques. Here, we introduce several versatile techniques to monitor mitophagy in human cells, Caenorhabditis elegans (e.g., Rosella and DCT-1/ LGG-1 strains), and mice (mt-Keima). A combination of these mitophagy detection techniques, including cross-species evaluation, will improve the accuracy of mitophagy measurements and lead to a better understanding of the role of mitophagy in health and disease.
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spelling oxford-uuid:113c1bc7-1a06-4082-8888-c7c5b9cdf7e02022-03-26T10:01:12ZIn vitro and in vivo detection of mitophagy in human cells, C. elegans, and mice.Journal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:113c1bc7-1a06-4082-8888-c7c5b9cdf7e0EnglishSymplectic Elements at OxfordJournal of Visualized Experiments2017Fang, EFPalikaras, KSun, NFivenson, EMSpangler, RDKerr, JSCordonnier, SAHou, YDombi, EKassahun, HTavernarakis, NPoulton, JNilsen, HBohr, VAMitochondria are the powerhouses of cells and produce cellular energy in the form of ATP. Mitochondrial dysfunction contributes to biological aging and a wide variety of disorders including metabolic diseases, premature aging syndromes, and neurodegenerative diseases such as Alzheimer's disease (AD) and Parkinson's disease (PD). Maintenance of mitochondrial health depends on mitochondrial biogenesis and the efficient clearance of dysfunctional mitochondria through mitophagy. Experimental methods to accurately detect autophagy/mitophagy, especially in animal models, have been challenging to develop. Recent progress towards the understanding of the molecular mechanisms of mitophagy has enabled the development of novel mitophagy detection techniques. Here, we introduce several versatile techniques to monitor mitophagy in human cells, Caenorhabditis elegans (e.g., Rosella and DCT-1/ LGG-1 strains), and mice (mt-Keima). A combination of these mitophagy detection techniques, including cross-species evaluation, will improve the accuracy of mitophagy measurements and lead to a better understanding of the role of mitophagy in health and disease.
spellingShingle Fang, EF
Palikaras, K
Sun, N
Fivenson, EM
Spangler, RD
Kerr, JS
Cordonnier, SA
Hou, Y
Dombi, E
Kassahun, H
Tavernarakis, N
Poulton, J
Nilsen, H
Bohr, VA
In vitro and in vivo detection of mitophagy in human cells, C. elegans, and mice.
title In vitro and in vivo detection of mitophagy in human cells, C. elegans, and mice.
title_full In vitro and in vivo detection of mitophagy in human cells, C. elegans, and mice.
title_fullStr In vitro and in vivo detection of mitophagy in human cells, C. elegans, and mice.
title_full_unstemmed In vitro and in vivo detection of mitophagy in human cells, C. elegans, and mice.
title_short In vitro and in vivo detection of mitophagy in human cells, C. elegans, and mice.
title_sort in vitro and in vivo detection of mitophagy in human cells c elegans and mice
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