The tetraspanin CD151 marks a unique population of activated human T cells
SCIENTIFIC REPORTS
Authors: Perez, Mildred D.; Seu, Lillian; Lowman, Kelsey E.; Moylan, David C.; Tidwell, Christopher; Samuel, Shekwonya; Duverger, Alexandra; Wagner, Frederic H.; Carlin, Eric; Sharma, Vishal; Pope, Brandon; Raman, Chander; Erdmann, Nathan; Locke, Jayme; Hu, Hui; Sabbaj, Steffanie; Kutsch, Olaf
Abstract
Tetraspanins are a family of proteins with an array of functions that are well studied in cancer biology, but their importance in immunology is underappreciated. Here we establish the tetraspanin CD151 as a unique marker of T-cell activation and, in extension, an indicator of elevated, systemic T-cell activity. Baseline CD151 expression found on a subset of T-cells was indicative of increased activation of the MAPK pathway. Following TCR/CD3 activation, CD151 expression was upregulated on the overall T-cell population, a quintessential feature of an activation marker. CD151+T-cell frequencies in the spleen, an organ with increased immune activity, were twice as high as in paired peripheral blood samples. This CD151+T-cell frequency increase was not paralleled by an increase of CD25 or CD38, demonstrating that CD151 expression is regulated independently of other T-cell activation markers. CD151+T-cells were also more likely to express preformed granzyme B, suggesting that CD151+T cells are pro-inflammatory. To this end, HIV-1 patients on antiretroviral therapy who are reported to exhibit chronically elevated levels of immune activity, had significantly higher CD4+CD151+T-cell frequencies than healthy controls, raising the possibility that proinflammatory CD151+T cells could contribute to the premature immunological aging phenotype observed in these patients.
HIV-1 Tat and cocaine impact mitochondrial epigenetics: effects on DNA methylation
EPIGENETICS
Authors: Doke, Mayur; Jeganathan, Venkatesh; McLaughlin, Jay P.; Samikkannu, Thangavel
Abstract
Human immunodeficiency virus (HIV) infection and the psychostimulant drug cocaine are known to induce epigenetic changes in DNA methylation that are linked with the severity of viral replication and disease progression, which impair neuronal functions. Increasing evidence suggests that changes in DNA methylation and hydroxymethylation occur in mitochondrial DNA (mtDNA) and represent mitochondrial genome epigenetic modifications (mitoepigenetic modifications). These modifications likely regulate both mtDNA replication and gene expression. However, mtDNA methylation has not been studied extensively in the contexts of cocaine abuse and HIV-1 infection. In the present study, epigenetic factors changed the levels of the DNA methyltransferases (DNMTs) DNMT1, DNMT3a, and DNMT3b, the Ten-eleven translocation (TET) enzymes 1, 2, and 3, and mitochondrial DNMTs (mtDNMTs) both in vitro and in vivo. These changes resulted in alterations in mtDNA methylation levels at CpG and non-CpG sites in human primary astrocytes as measured using targeted next-generation bisulphite sequencing (TNGBS). Moreover, mitochondrial methylation levels in the MT-RNR1, MT-ND5, MT-ND1, D-loop and MT-CYB regions of mtDNA were lower in the HIV-1 Tat and cocaine treatment groups than in the control group. In summary, the present findings suggest that mitoepigenetic modification in the human brain causes the mitochondrial dysfunction that gives rise to neuro-AIDS.