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dos Santos, C.

Publications and source records attributed to dos Santos, C..

3 recordsLinked to original sources

Calorie Restriction Up-regulates Islet PD-L1 Signaling and Decreases the Risk of Auto-immune Diabetes Onset in NOD Mice.

Type 1 diabetes (T1D) is an autoimmune disease where beta cells are destroyed by cytotoxic T cells. Calorie restriction (CR) enhances glucose homeostasis and promotes beta cell longevity and was used as therapeutic strategy for T1D prior to the discovery of insulin. However, a significant knowledge gap remains regarding its effects on beta cells during the pathogenesis of autoimmunity. We demonstrate that CR enhances glucose homeostasis, reduces beta cell load, and delays T1D onset in NOD mice. CR induced a largely post-mitotic beta cell state marked by selective loss of beta cell identity markers, reduced DNA damage and beta cell senescence, and increased PD-L1 within the islet microenvironment. This beta cell phenotype correlates with anti-inflammatory and exhausted immune cell states in the NOD islet. Together, these findings indicate that CR improves glucose homeostasis and remodels the islet microenvironment to promote beta cell longevity via a pro-tolerogenic immune microenvironment that reduces the risk for autoimmune diabetes.

cell biology↗

Calorie Restriction modulates beta cell IP3R activity to regulate Ca2+ homeostasis and cell network connectivity

Calorie restriction (CR) promotes beta cell longevity by regulating cell identity, organelle and protein homeostasis, and metabolism pathways. CR beta cells have higher cAMP levels and mitochondria with an elevated potential to generate ATP. However, CR beta cells have reduced insulin secretion due to increased peripheral insulin sensitivity. How CR impacts beta cell Ca2+ homeostasis to regulate beta cell insulin release remains unknown. We investigated this question using acute pancreatic tissue slices prepared from ad-libitum (AL) or CR mice loaded with a low affinity Ca2+ indicator and recorded cytosolic Ca2+ gradients with fast confocal imaging. We exposed these slices to increasing glucose concentrations and applied our semi-automatic analysis pipeline to detect thousands of individual beta cells followed by identification of individual Ca2+ spiking events. We observed that CR beta cells have fast short-amplitude Ca2+ oscillations that correlate with largely disconnected beta cell networks across the islet. Using acetylcholine stimulation, we found that faster IP3R-driven Ca2+ oscillations linked to higher cytosolic cAMP levels protect beta cells against acute depletion of ER Ca2+ stress. Therefore, this study provides new mechanistic insight into adaptation of beta cell and of beta cell networks to CR interventions. Article highlightsO_LIBeta cells from calorie restricted (CR) mice have decreased insulin release, however the mechanisms underlying this adaptive response remain unknown. C_LIO_LICR beta cells have elevated basal cytosolic cAMP ([cAMP]cyt) compared to beta cells in control ad libitum fed (AL) mice, and they operate with faster and shorter cytosolic Ca2+ oscillations. C_LIO_LIWhile AL beta cells form interconnected activity networks, CR beta cells are largely disconnected and fire more independently of each other. C_LIO_LIIslets of CR mice can sustain prolonged activity during ER stressing conditions due to elevated IP3R activity and improved Ca2+ homeostasis. C_LI Why did we undertake this study?We have previously shown that calorie restriction (CR) promotes beta cell longevity by enhancing beta cell identity and organelle homeostasis mechanisms. This long-lived phenotype correlated with the onset of enhanced peripheral insulin sensitivity and reduced beta cell insulin release in vivo despite higher cAMP levels and increased potential for mitochondrial ATP generation. However, the mechanisms underlying the reduced cell insulin release phenotype of CR beta cells remains unknown. Therefore, we investigated the underlying Ca2+ homeostasis mechanisms regulating insulin release in AL and CR beta cells. What is the specific question(s) we wanted to answer?We were interested in determining what are the cell Ca2+ activity patterns during basal and glucose-stimulated conditions in AL and CR beta cells. In addition, we also investigated how CR beta cells respond to epinephrine inhibition and supra-stimulatory concentrations of acetylcholine (ACh), which drive acute beta cell stress by disrupting normal cAMP and ER Ca2+ signaling, respectively. Finally, we investigate whether CR beta cells formed more interconnected beta cell networks driven by changes in Ca2+ activity patterns. What did we find?We found that CR beta cells are more active with significantly higher rates of Ca2+ oscillation at basal and high glucose concentrations. In fact, CR beta cells have shorter inter-Ca2+ event intervals that are more resistant to depletion of cAMP by epinephrine application. In contrast, stimulation of IP3R activity (to force depletion of ER Ca2+ stores) by supraphysiological ACh concentrations revealed that CR beta cells were able to sustain a prolonged Ca2+ activity versus AL beta cells. Surprisingly, this enhanced beta cell activity profile reduced beta cell activity network connectivity. What are the implications of our findings?Our work demonstrates that CR beta cells have higher baseline and glucose-stimulated Ca2+ activity due to higher cAMP levels. These cells also have dominant IP3R activity that grants improved ER Ca2+ homeostasis and significantly reduces beta cell network connectivity to tone down insulin secretion. These studies provide a mechanistic understanding of how beta cells adapt to CR and to CR-associated enhanced insulin sensitivity.

cell biology↗

Mitochondrial transplantation: a novel therapy for liver ischemia/reperfusion injury

MINI-ABSTRACTMitochondrial transplantation prevented liver ischemia/reperfusion-induced hepatocellular injury and inflammation. In vivo intravital microscopy demonstrated that liver resident macrophages, namely Kupffer cells, rapidly sequestered, internalized and acidified transplanted mitochondria through the CRIg immunoreceptor. Mechanistically, both Kupffer cells and CRIg were necessary for the hepatoprotective and anti-inflammatory effects of mitochondrial transplantation. STRUCTURED ABSTRACTO_ST_ABSObjectiveC_ST_ABSTo investigate the hepatoprotective effects of mitochondrial transplantation in a murine liver ischemia/reperfusion (I/R) model. Summary background dataSequential liver ischemia followed by reperfusion (I/R) is a pathophysiological process underlying hepatocellular injury in a number of clinical contexts, such as hemorrhagic shock/resuscitation, major elective liver surgery and organ transplantation. A unifying pathogenic consequence of I/R is mitochondrial dysfunction. Restoration of mitochondria via transplantation (MTx) has emerged as potential therapeutic in I/R. However, its role in liver I/R and its mechanisms of action remain poorly defined. MethodsWe investigated the hepatoprotective effects of MTx in an in vivo mouse model of liver I/R and used in vivo imaging and various knockout and transgenic mouse models to determine the mechanism of protection. ResultsWe found that I/R-induced hepatocellular injury was prevented by MTx, as measured by plasma ALT, AST and liver histology. Additionally, I/R-induced pro-inflammatory cytokine release (IL-6, TNF) was dampened by MTx, and anti-inflammatory IL-10 was enhanced. Moreover, MTx lowered neutrophil infiltration into both the liver sinusoids and lung BALF, suggesting a local and distant reduction in inflammation. Using in vivo intravital imaging, we found that I/R-subjected Kupffer cells (KCs), rapidly sequestered transplanted mitochondria, and acidified mitochondria within lysosomal compartments. To specifically interrogate the role of KCs, we depleted KCs using the diphtheria toxin-inducible Clec4f/iDTR transgenic mouse, then induced I/R, and discovered that KCs are necessary for the beneficial effects of MTx. Finally, we induced I/R in complement receptor of the immunoglobulin superfamily (CRIg) knockout mice and found that CRIg was required for mitochondria capture by KCs and mitochondrial-mediated hepatoprotection. ConclusionsIn this study, we demonstrated that CRIg-dependent capture of mitochondria by I/R-subjected Kupffer cells is a hepatoprotective mechanism in vivo. These data progress knowledge on the mechanisms of MTx and opens new avenues for clinical translation.

cell biology↗