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Biology subjects

Wang, S. E.

Publications and source records attributed to Wang, S. E..

6 recordsLinked to original sources

Ovarian Tumor FAK Inhibition Releases Omega-3 Fatty Acids Stimulating GATA6 Peritoneal Macrophage CXCL13 Production Enhancing Immunotherapy

High grade serous ovarian cancer (HGSOC) is the most lethal gynecologic malignancy in the USA due to chemo- and immuno-therapy resistance. We show that focal adhesion kinase (FAK) inhibition with ifebemtinib or tumor genetic FAK knockout (KO) in syngeneic ovarian tumor models stimulated resident large peritoneal macrophages to express CXCL13 chemokine and promoted B cell infiltration. Macrophage GATA6 inactivation prevented CXCL13 expression and enhanced FAK-KO tumor growth. Combining ifebemtinib with pegylated doxorubicin chemotherapy and anti-TIGIT immune checkpoint antibody extended survival with tumor-associated tertiary lymphoid structure formation. Mechanistically, FAK-KO heat-treated conditioned media contained exosomes enriched with omega-3 fatty acids which stimulated macrophage CXCL13 production. Ifebemtinib-treated tumors, FAK-KO exosomes, and purified eicosapentaenoic acid enhanced murine and human HGSOC-associated tumor macrophage reprogramming and CXCL13 expression. Overall, our studies define a tumor to macrophage signaling linkage via omega-3 exosome lipids supporting B cell recruitment, survival, immunotherapy enhancement, and actionable via small molecule FAK inhibition. eTOC BlurbHigh-grade serous ovarian cancer remains difficult to treat due to therapy resistance. Chen et. al. reveal that tumor FAK inhibition educates macrophages to express CXCL13 associated with B cell infiltration - highlighting a new therapeutic pathway linking FAK inhibition, omega-3 fatty acid containing exosomes, and macrophage mediated anti-tumor activation. Bullet pointsO_LIGenetic or small molecule FAK inhibition enhances ovarian tumor B cell infiltration C_LIO_LITumor FAK inhibition stimulates GATA6+ macrophages to make CXCL13 C_LIO_LIFAKi, pegylated doxorubicin and anti-TIGIT promote tertiary lymphoid structures C_LIO_LIOmega-3 fatty acids stimulate human HGSOC ascites macrophages to make CXCL13 C_LI

cancer biology↗

Inflammation increases the penetrance of behavioral impairment in Shank3 haploinsufficiency mice -- can it explain the behavioral regression in Autism?

Behavioral regression occurs in [~]40% of SHANK3-associated autism spectrum disorder (ASD). We previously reported that significant behavioral regression in a small cohort with SHANK3 haploinsufficiency patients, triggered by subclinical infections, responded to immunomodulator treatments. We hypothesize that behavioral regression results from the interplay between SHANK3 deficiency and neuroinflammation. Using Shank3 exon 4-22 deletion heterozygous mutant (Sh3+/-) mouse, which shows no significant behavior impairments, we established a preclinical model - Shank3 haploinsufficiency mouse undergoing systemic inflammation challenge via intraperitoneal injection of lipopolysaccharides (LPS). We found that, two weeks after LPS challenge, wild-type mice (WT) recovered but Sh3+/- mice exhibited motor impairment, anxiety-like behaviors, and excessive grooming, similar to Shank3 exon 4-22 deletion homozygous mutants. Anti-inflammatory treatment partially reversed LPS-induced behavioral changes. Transcriptomic analysis revealed upregulation of neuroinflammation-related genes and downregulation of synaptic function-related genes in Sh3+/- mice in response to LPS. Especially, pro-inflammatory genes and microglia markers were overly activated that may result from the increased toll-like receptor 4 (TLR4) in Sh3+/- mice. Microglia overactivation elevated synapse engulfment and disrupted synaptic protein may underlie LPS-triggered worsen behavior phenotypes in Sh3+/- mice. Our findings indicate that neuroinflammation increases the penetrance of behavioral impairment in Shank3 haploinsufficiency mice and support a potential mechanism for the behavioral regression in human SHANK3 disorders for future investigations.

neuroscience↗

Deficiency of Shank3 in the Nucleus Accumbens Reveals a Loss of Social-Specific Motivation

Deficits in social interaction are a hallmark symptom of autism and other neuropsychiatric disorders. SHANK3 encodes a postsynaptic density scaffold protein and is one of the most common causal genes for autism. SHANK3 protein is highly expressed in the nucleus accumbens (NAc), a critical brain region underlying motivated behavior, including social motivation. We previously reported that global Shank3{Delta}e4-22 deletion mice have decreased motivation for palatable food, increased unilateral social investigation, and show a hypoactive NAc and NAc-connected circuits. We thus developed a new Shank3flox/floxmouse tool to conditionally knockdown SHANK3 in a region-specific manner. We found that knockdown of Shank3 in the NAc decreased social preference in the 3-chamber assay and decreased social motivation in the social conditioned place preference (sCPP) assay. Shank3-NAc deletion did not alter food reward seeking, reciprocal social investigation, or anxiety-like behaviors, that we report in global Shank3{Delta}e4-22 deletion mice. These data establish a novel and specific role of Shank3 in the NAc on social motivation.

neuroscience↗

Native Doublet Microtubules from Trichomonas vaginalis Reveal Parasite-Specific Proteins as Potential Drug Targets

Doublet microtubules (DMTs) are flagellar components required for the protist Trichomonas vaginalis (Tv) to swim through the human genitourinary tract to cause trichomoniasis, the most common non-viral sexually transmitted disease. Lack of DMT structures has prevented structure-guided drug design to manage Tv infection. Here, we determined the cryo-EM structure of native Tv-DMTs, identifying 29 unique proteins, including 18 microtubule inner proteins and 9 microtubule outer proteins. While the A-tubule is simplistic compared to DMTs of other organisms, the B-tubule features specialized, parasite-specific proteins, like TvFAP40 and TvFAP35 that form filaments near the inner and outer junctions, respectively, to stabilize DMTs and enable Tv locomotion. Notably, a small molecule, assigned as IP6, is coordinated within a pocket of TvFAP40 and has characteristics of a drug molecule. This first atomic model of the Tv-DMT highlights the diversity of eukaryotic motility machinery and provides a structural framework to inform the rational design of therapeutics.

microbiology↗

Colocalization of Protein and microRNA Markers Reveals Unique Extracellular Vesicle Sub-Populations for Early Cancer Detection

Extracellular vesicles (EVs) play important roles in cell-cell communication but they are highly heterogeneous, and each vesicle has dimensions smaller than 200 nm thus encapsulates very limited amounts of cargos. We report the technique of NanOstirBar (NOB)-EnabLed Single Particle Analysis (NOBEL-SPA) that utilizes NOBs, which are superparamagnetic nanorods easily handled by a magnet or a rotating magnetic field, to act as isolated "islands" for EV immobilization and cargo confinement. NOBEL-SPA permits rapid inspection of single EV with high confidence by confocal fluorescence microscopy, and can assess the colocalization of selected protein/microRNA (miRNA) pairs in the EVs produced by various cell lines or present in clinical sera samples. Specific EV sub-populations marked by the colocalization of unique protein and miRNA combinations have been revealed by the present work, which can differentiate the EVs by their cells or origin, as well as to detect early-stage breast cancer (BC). We believe NOBEL-SPA can be expanded to analyze the co-localization of other types of cargo molecules, and will be a powerful tool to study EV cargo loading and functions under different physiological conditions, and help discover distinct EV subgroups valuable in clinical examination and therapeutics development.

cancer biology↗

A mathematical model of the disruption of glucose homeostasis in cancer patients

In this paper we investigate the disruption of the glucose homeostasis at the whole-body level by the presence of cancer disease. Of particular interest are the potentially different responses of patients with or without hyperglycemia (including Diabetes Mellitus) to the cancer challenge, and how tumor growth, in turn, responds to hyperglycemia and its medical management. We propose a mathematical model that describes the competition between cancer cells and glucosedependent healthy cells for a shared glucose resource. We also include the metabolic reprogramming of healthy cells by cancer-cell-initiated mechanism to reflect the interplay between the two cell populations. We parametrize this model and carry out numerical simulations of various scenarios, with growth of tumor mass and loss of healthy body mass as endpoints. We report sets of cancer characteristics that show plausible disease histories. We investigate parameters that change cancer cells aggressiveness, and we exhibit differing responses in diabetic and non-diabetic, in the absence or presence of glycemic control. Our model predictions are in line with observations of weight loss in cancer patients and the increased growth (or earlier onset) of tumor in diabetic individuals. The model will also aid future studies on countermeasures such as the reduction of circulating glucose in cancer patients.

cancer biology↗