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Nano, R.

Publications and source records attributed to Nano, R..

2 recordsLinked to original sources

High-resolution glucose fate-mapping reveals LDHB-dependent lactate production by human pancreatic β cells

Using 13C6 glucose labeling coupled to GC-MS and 2D 1H-13C HSQC NMR spectroscopy, we have obtained a comparative high-resolution map of glucose fate underpinning {beta} cell function. In both mouse and human islets, the contribution of glucose to the TCA cycle is similar. Pyruvate-fueling of the TCA cycle is primarily mediated by the activity of pyruvate dehydrogenase, with lower flux through pyruvate carboxylase. While conversion of pyruvate to lactate by lactate dehydrogenase (LDH) can be detected in islets of both species, lactate accumulation is six-fold higher in human islets. Human islets express LDH, with low-moderate LDHA expression and {beta} cell-specific LDHB expression. LDHB inhibition increases glucose-dependent lactate generation in mouse and human {beta} cells, and decreases Ca2+-spiking frequency without affecting ATP/ADP levels. Thus, we show that LDHB limits glucose-stimulated lactate generation in {beta} cells. Further studies are warranted to understand how lactate impacts {beta} cell metabolism and/or function. HIGHLIGHTSO_LIHuman and rodent islets generate lactate following glucose stimulation. C_LIO_LI{beta} cells specifically express LDHB, which acts to limit lactate generation. C_LIO_LILDHB inhibition influences Ca2+ spiking frequency without affecting ATP/ADP ratio. C_LI eTOCCuozzo et al show that glucose-stimulated rodent and human islets generate lactate. Transcriptomic and imaging analyses reveal that LDHB is specifically expressed in {beta} cells and unexpectedly restrains lactate production. LDHB expression and thus regulated lactate generation might reflect a key mechanism underlying {beta} cell metabolism, function and survival.

physiology↗

Follicular helper T cell signature of replicative exhaustion, apoptosis and senescence in common variable immunodeficiency

BackgroundCommon variable immunodeficiency (CVID) is the most frequent primary antibody deficiency. A significant number of CVID patients are affected by various manifestations of immune dysregulation such as autoimmunity. Follicular T cells cells are thought to support the development of CVID by providing inappropriate signals to B cells during the germinal center (GC) response. ObjectivesWe determined the possible role of follicular helper (Tfh) and follicular regulatory T (Tfr) cells in patients with CVID by phenotypic, molecular, and functional studies. MethodsWe analyzed the frequency, phenotype, transcriptome, and function of circulating Tfh cells in the peripheral blood of 27 CVID patients (11 pediatric and 16 adult) displaying autoimmunity as additional phenotype and compared them to 106 (39 pediatric and 67 adult) age-matched healthy controls. We applied Whole Exome Sequencing (WES) and Sanger sequencing to identify mutations that could account for the development of CVID and associate with Tfh alterations. ResultsA group of CVID patients (n=9) showed super-physiological frequency of Tfh1 cells and a prominent expression of PD-1 and ICOS, as well as a Tfh RNA signature consistent with highly active, but exhausted and apoptotic cells. Plasmatic CXCL13 levels were elevated in these patients and positively correlated with Tfh1 cell frequency, PD-1 levels, and an elevated frequency of CD21loCD38lo autoreactive B cells. Monoallelic variants in RTEL1, a telomere length- and DNA repair-related gene, were ideintified in four patients belonging to this group. Lymphocytes with highly shortened telomeres, and a Tfh signature enriched in genes involved in telomere elongation and response to DNA damage were seen. Histopathological analysis of the spleen in one patient showed reduced amount and size of the GC that, unexpectedly, contained an increased number of Tfh cells. ConclusionThese data point toward a novel pathogenetic mechanism in a group of patients with CVID, whereby alterations in DNA repair and telomere elongation might be involved in GC B cells, and acquisition of a Th1, highly activated but exhausted and apoptotic phenotype by Tfh cells.

immunology↗