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Logotheti, S.

Publications and source records attributed to Logotheti, S..

2 recordsLinked to original sources

In situ vaccine effect of radiotherapy is associated with intratumoural ERV reactivation and RNA virus sensing

Radiotherapy (RT) transforms tumour tissues into in situ vaccines that trigger antitumor immunity. Immunogenicity depends on how RT is delivered, since heterogeneous RT (spatially fractionated RT, SFRT) elicits more prominent responses than the conventional homogenous one. However, this phenomenon cannot be clinically harnessed, unless the relevant pathways are identified. To gain insights, we developed a hybrid dry-lab/wet-lab approach that integrates systems-level immune phenotypes established by homogenous or heterogenous RT (SFRT) with the transcriptomic profiling of irradiated tumors. By further combining feature extraction with machine-learning, including multilayer perceptron modelling, we ranked predictors of immune infiltration and patient survivability for each RT type. We found that conventional RT induces coordinated upregulation of cytosolic sensors of RNA viruses (OASes and RIG I-like receptors) along with ERV RNAs predominately 400-800 base-pairs long, which might serve as their ligands. For schemes establishing abscopal effects, a coordinated upregulation of the OAS sensors and shared ERV transcripts was observed in both irradiated and distant tumours. Compared to homogenous RT, SFRT triggered earlier and stronger activation of OAS signaling along with NK cell responses. Overall, we show a co-involvement of tumour cell-intrinsic ERVs and their cytosolic RNA sensors in RT-induced antitumor immunity. This key finding could guide mechanistic studies and future precision oncology.

cancer biology↗

Glucagon-like peptide-1 receptor in the human hypothalamus is associated with body mass index and colocalizes with the anorexigenic neuropeptide nucleobindin-2/nesfatin-1.

IntroductionGlucagon-like peptide-1 (GLP-1) anorexigenic and anti-obesogenic effects are centrally mediated. Data on animals emphasize the importance of neuronal GLP-1 receptor (GLP-1R) for feeding suppression, although it is unclear whether astrocytes participate in the transduction of anorectic GLP-1R-dependent signals. In humans, the brain circuitry underlying these effects remains insufficiently investigated. GLP-1R neuroanatomic localization in human hypothalamus, a brain region with a pivotal role in energy homeostasis regulation, is essential in order to improve our understanding of GLP-1 signaling pathways and central metabolic functions. The present study aimed to explore GLP-1R protein expression in human hypothalamus and its correlation with body mass index (BMI). MethodsSections of hypothalamus from 28 autopsy cases, 11 with normal weight (BMI < 25 Kg/m2) and 17 with non-normal weight (BMI [&ge;] 25 Kg/m2), were examined using immunohistochemistry and double immunofluorescence labeling. ResultsProminent GLP-1R immunoexpression was detected in neurons of several hypothalamic nuclei, including paraventricular, supraoptic, and infundibular nuclei, lateral hypothalamic area (LH), and basal forebrain nuclei. Interestingly, in LH, GLP-1R protein expression was significantly decreased in individuals with BMI [&ge;] 25 Kg/m2, compared with normal weight counterparts (p=0.03). Furthermore, GLP-1R was moderately and negatively correlated ({tau}b=-0.347, p=0.024) with BMI levels only in the LH. GLP-1R extensively colocalized with the anorexigenic and anti-obesogenic neuropeptide nucleobindin-2/nesfatin-1, but not with the astrocytic marker glial fibrillary acidic protein (GFAP). ConclusionThese data suggest a potential role for GLP-1R in the regulation of energy balance in human hypothalamus, possibly through interactions with nesfatin-1. In LH, an appetite- and reward-related brain region, reduced GLP-1R immunoexpression may contribute to dysregulation of homeostatic and/or hedonic feeding behavior. GLP-1R colocalization with nesfatin-1 in the basal forebrain, a cognition-related brain area, might give impetus towards elucidating additional central actions of GLP-1R.

neuroscience↗