Literature DB >> 20469937

Aging in mouse brain is a cell/tissue-level phenomenon exacerbated by proteasome loss.

Lei Mao1, Irmgard Römer, Grit Nebrich, Oliver Klein, Andrea Koppelstätter, Sascha C Hin, Daniela Hartl, Claus Zabel.   

Abstract

Biological aging is often described by its phenotypic effect on individuals. Still, its causes are more likely found on the molecular level. Biological organisms can be considered as reliability-engineered, robust systems and applying reliability theory to their basic nonaging components, proteins, could provide insight into the aging mechanism. Reliability theory suggests that aging is an obligatory trade-off in a fault-tolerant system such as the cell which is constructed based on redundancy design. Aging is the inevitable redundancy loss of functional system components, that is proteins, over time. In our study, we investigated mouse brain development, adulthood, and aging from embryonic day 10 to 100 weeks. We determined redundancy loss of different protein categories with age using reliability theory. We observed a near-linear decrease of protein redundancy during aging. Aging may therefore be a phenotypic manifestation of redundancy loss caused by nonfunctional protein accumulation. This is supported by a loss of proteasome system components faster than dictated by reliability theory. This loss is highly detrimental to biological self-renewal and seems to be a key contributor to aging and therefore could represent a major target for therapies for aging and age-related diseases.

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Year:  2010        PMID: 20469937     DOI: 10.1021/pr100059j

Source DB:  PubMed          Journal:  J Proteome Res        ISSN: 1535-3893            Impact factor:   4.466


  5 in total

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3.  Accurate quantification of more than 4000 mouse tissue proteins reveals minimal proteome changes during aging.

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Review 5.  Opportunities and Limitations of Modelling Alzheimer's Disease with Induced Pluripotent Stem Cells.

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  5 in total

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