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Lerner, D.

Publications and source records attributed to Lerner, D..

3 recordsLinked to original sources

Endothelial LRRC8C associates with LRRC8A and LRRC8B to regulate vascular reactivity and blood pressure

Vascular tone is impacted by the endotheliums ability to detect mechanical and chemical stimulation. Leucine-Rich Repeat-Containing protein 8A, (LRRC8A), was previously identified as a required component of the mechanoresponsive endothelial LRRC8 complex regulating AKT-endothelial nitric oxide synthase (eNOS) signaling and vascular function. While LRRC8A is broadly expressed, LRRC8B, C, D and E have tissue-restricted expression. Here, we identified 2 single nucleotide polymorphisms (SNPs) in LRRC8C highly associated with elevated diastolic and systolic blood pressure in human genetic studies, implicating LRRC8C as a regulator of vascular function. While LRRC8A/B/C/D/E are expressed in endothelium, co-immunoprecipitation experiments from lung endothelium using Lrrc8a-3xFlag knock-in mice, Lrrc8c-HA knock-in mice and endothelium-specific Lrrc8a-3xFlag overexpression mice demonstrate the endothelial LRRC8 complex to be composed largely of LRRC8A/B/C heteromers. Lrrc8a/b/c knock-out studies in mice and knock-down studies in human umbilical vein endothelial cells show co-dependent expression of LRRC8A/B/C proteins, but not LRRC8D. Functionally, LRRC8A and LRRC8C depletion reduces endothelial volume regulatory anion channel (VRAC) currents, inhibits AKT-eNOS signaling, increases myogenic tone, impairs eNOS dependent vasodilation, and exacerbates angiotensin-induced hypertension. These data identify LRRC8A, LRRC8B and LRRC8C as components of the endothelial LRRC8 complex and reveal LRRC8C as having a non-redundant role in regulating endothelial AKT-eNOS, vascular relaxation and susceptibility to hypertension.

cell biology↗

Endogenously generated Dutch-type Aβ nonfibrillar aggregates dysregulate presynaptic neurotransmission in the absence of detectable inflammation

Structured AbstractO_ST_ABSBackgroundC_ST_ABSAPPE693Q ("Dutch") transgenic mice develop aging-related learning deficits and accumulate endogenously generated nonfibrillar aggregates of A{beta} (NFA-A{beta}) and APP -carboxy terminal fragments. NFA-A{beta} correlates with synaptic loss and memory deficits more closely than does fibrillar A{beta}. MethodsWe assessed the physiological, transcriptomic, ultrastructural, histological, and metabolic changes associated with the accumulation of NFA of Dutch A{beta} in brains of APPE693Q mice. ResultsAging-related accumulation of NFA-A{beta} in APPE693Q mice was revealed by A11 immunohistochemistry and cyclic D,L--peptide-FITC microscopy. Presynaptic termini of APPE693Q mice developed physiological abnormalities in post-tetanic potentiation, synaptic fatigue, synaptic vesicle replenishment, and an aging-related reduction in mitochondrial complex I activity. Single-cell RNA sequencing showed that excitatory neurons exhibited an altered transcriptomic profile involving "protein translation" and "oxidative phosphorylation". DiscussionAccumulation of NFA-A{beta} alters neuronal metabolism but does not activate inflammation. Depletion of all forms of A{beta} may be required to eliminate A{beta} toxicity with anti-amyloid antibodies.

neuroscience↗

Latitudinal phylogenetic and diversity gradients are explained by a tropical-temperate transitional region

The distribution of ecological and evolutionary forces throughout space bring about the patterning of biodiversity. In large geographical areas, this causes the regionalization of biodiversity into structured units known as bioregions. In order to understand how such patterns emerge, a clear delineation of bioregions is required. We use tree species as model taxa in order to analyze the global distribution of biodiversity and understand how latitudinal gradients of biodiversity, specifically the latitudinal phylogenetic and diveristy gradients are formed. By compiling an extensive dataset of tree species distributions and their phylogenetic relationships, we use a data-driven approach to delineate global bioregions of similar evolutionary histories, termed phyloregions. Our analysis reveals the presence of a region between the tropical and temperate regions, coined bridge phylore-gion, with a unique evolutionary composition and characteristically weaker association to climatic and environmental parameters. Through simulations, we show that the pres-ence of latitudinal phylogenetic and diversity gradients are much more likely to emerge in the presence of an independent ecological region between tropical and temperate regions, suggesting that its role as a stepping-stone in colonization of species between distinct climatic zones has shaped latitudinal gradients. This study highlights that accurate de-lineation of evolutionary structures of biodiversity can reveal previously cryptic regions with fundamental evolutionary roles in the formation of biodiveristy patterns. 1 Significance StatementBiodiversity patterns are shaped by geography, forming distinctive units known as bioregions. At global scales there are important gradients in terms of species diversity and phylogenetic relations that are well documented, but the underlying processes that generate them are unclear. We comprised an extensive dataset of tree species distributions and phylogeny, and identified the bioregions from the dataset. We analyzed the diversity and the phylogenetic gradients and identified a previously cryptic bioregion between tropical and temperate zones. Though less climatically distinct, we show through simulations that the presence of this transition zone better explains latitudinal biodiversity patterns. Our findings refine the global dispersal dynamics of species between tropical and temperate regions and highlight the role of this intermediate region in shaping global biodiversity patterns.

evolutionary biology↗