Literature DB >> 15056286

Activation of calpain-1 in myelin and microglia in the white matter of the aged rhesus monkey.

Jason D Hinman1, James A Duce, Robert A Siman, William Hollander, Carmela R Abraham.   

Abstract

Ultrastructural disruption of myelin sheaths and a loss of myelin with age are well-documented phenomena in both the human and rhesus monkey. Age-dependent activation of calpain-1 (EC 3.4.22.52) has been suggested as a plausible mechanism for increased proteolysis in the white matter of the rhesus monkey. The present study documents activation of calpain-1 throughout brain white matter in aged animals, evidenced by immunodetection of the activated enzyme as well as a calpain-derived spectrin fragment in both tissue section and Triton X-100-soluble homogenate of subcortical white matter from the frontal, temporal, and parietal lobes. Separation of myelin fractions from brain stem tissue into intact and floating myelin confirmed previous reports of an age-related increase in activated calpain-1 in the floating fraction. Measurements of calpain-1 activity using a fluorescent substrate revealed an age-related increase in calpain-1 proteolytic activity in the floating myelin fraction consistent with immunodetection of the activated enzyme in this fraction. Double-immunofluorescence demonstrated co-localization of activated calpain-1 with human leukocyte antigen-DR (HLA-DR), a marker for activated microglia, suggesting that these cells represent the major source of the increase in activated calpain-1 in the aging brain. These data solidify the role of calpain-1 in myelin protein metabolism and further implicate activated microglia in the pathology of the aging brain.

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Year:  2004        PMID: 15056286     DOI: 10.1046/j.1471-4159.2004.02348.x

Source DB:  PubMed          Journal:  J Neurochem        ISSN: 0022-3042            Impact factor:   5.372


  11 in total

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8.  Constitutive degradation of IkappaBalpha in human T lymphocytes is mediated by calpain.

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9.  Activation and expression of μ-calpain in dorsal root contributes to RTX-induced mechanical allodynia.

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Review 10.  Quantitative, structural and molecular changes in neuroglia of aging mammals: A review.

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