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Kempf, S.

Publications and source records attributed to Kempf, S..

3 recordsLinked to original sources

Pericyte contact alters endothelial cell metabolism by promoting exchange of lactate through SLC16A3

Intimate crosstalk between endothelial cells and pericytes is fundamental for vascular development and stability, but the metabolic dimension of this interaction remains poorly defined. Using a filter-based co-culture system that mimics the shared basement membrane of the microcirculation, we performed an integrated multi-omics analysis to investigate how direct contact reprograms both cell types. We found that initial contact does not induce immediate quiescence but rather triggers a transient, low-level activation of an endothelial-to-mesenchymal transition (EndMT)-like state in endothelial cells, characterized by specific upregulation of genes involved in extracellular matrix production (e.g., collagen isoforms) and PDGFR signaling, without a full loss of endothelial identity. Concomitantly, pericytes shifted endothelial cell metabolism, increasing glycolysis and elevating intracellular pyruvate and lactate. Proteomic analysis of the contact interface revealed enrichment of solute carriers, most notably the lactate transporter SLC16A3. Functional studies demonstrated that pericytes act as a glycolytic partner, actively shuttling lactate to endothelial cells via SLC16A3. This lactate did not fuel the TCA cycle but instead served as a signaling metabolite, driving widespread alterations in the endothelial acetylome and lactylome, particularly affecting proteins involved in glycolytic metabolism. In vitro, exogenous lactate potentiated cytokine-induced EndMT and upregulated lactylation-associated genes. The physiological relevance of this lactate shuttle was confirmed in vivo, where endothelial-specific deletion of Slc16a3 in mice impaired postnatal retinal angiogenesis, leading to reduced vessel density and diminished endothelial-pericyte overlap without affecting endothelial cell proliferation. Our findings establish that vessel maturation is orchestrated by a metabolically gated phase of plasticity initiated upon first contact, wherein a targeted EndMT-like program and a pericyte-driven lactate signaling axis are integrated to coordinate vascular network assembly.

physiology↗

DNMT1-Mediated Regulation of Inhibitory Interneuron Migration Impacts Cortical Architecture and Function

The fine-tuned establishment of neuronal circuits during the formation of the cerebral cortex is pivotal for its functionality. Developmental abnormalities affecting the composition of cortical circuits, which consist of excitatory neurons and inhibitory cortical interneurons (cINs), are linked to a spectrum of neuropsychiatric disorders. Excitatory neurons originate in cortical proliferative zones, while inhibitory interneurons migrate from discrete domains of the basal telencephalon into the cortex. This migration is intricately governed by intrinsic genetic programs and extrinsic cues. Our current study reveals the role of the DNA methyltransferase 1 (DNMT1) in regulating the expression of key genes implicated in mouse cIN development and in guiding the migration of somatostatin (SST)-expressing interneurons at postmitotic level within the developing cortex. Dnmt1 deletion causes SST+ cINs to exit prematurely from the superficial migratory stream. In addition to the perturbed migration pattern and altered gene expression signatures, Dnmt1-deficient SST+ cINs had a discernible non-cell autonomous effect on cortical progenitors, which culminated in nuanced alterations of layer thicknesses in the adult cortex. Our study uncovers that DNMT1 governs the migration of SST+ cINs and through this, their instructive role in sculpting the intricate cortical layer architecture by signaling to cortical progenitors, with pronounced effects on neuronal network function.

neuroscience↗

Low Pcrit but no hypoxia tolerance? Hypoxia compensation in the Arctic keystone species Boreogadus saida.

Global warming has already caused a loss of almost 50% Arctic sea-ice coverage since the 1980s. Sea-ice loss strengthens summer stratification of the oceans water column and, consequently, hypoxic zones in the deep-water layers may form. The present study investigated the response of an Arctic keystone species, the Polar cod, Boreogadus saida, to hypoxia and warming. We measured the respiratory capacity (standard, routine and maximum metabolic rates, SMR, RMR, MMR, aerobic scope, critical oxygen saturation (Pcrit)) and swimming performance of Polar cod under progressive hypoxia at 2.4 {degrees}C and after warm acclimation to close to the species thermal limit (10.0 {degrees}C) via flow-through and swim tunnel respirometry. We observed clear and stable patterns that were similar in both thermal regimes: Polar cod displayed oxygen-regulating behaviour under progressive hypoxia, with SMR never below aerobic baseline metabolism and a very stable AS. Our study revealed that Polar cod can handle exceptionally low oxygen saturations down to a Pcrit of 5.9 % air saturation at typical habitat temperatures. Closer to critical temperatures (10.0 {degrees}C), Pcrit rose to 21.6 % air saturation. However, the pertinent question remains whether the observed behaviour can be summarized under classic hypoxia tolerance, as we a) did not observe any metabolic downregulation and b) no anaerobic component of the hypoxia response in Polar cod, which are usually put forward in the definition of hypoxia tolerance. Therefore, we describe the observed metabolic response to hypoxia rather as metabolic hypoxia compensation than hypoxia tolerance as the mechanisms involved here actively seek to improve oxygen supply instead of (anaerobically) tolerating hypoxia through metabolic depression.

physiology↗