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Biology subjects

Tao, G.

Publications and source records attributed to Tao, G..

4 recordsLinked to original sources

Surf4 deficiency reduces intestinal lipid absorption and secretion and decreases metabolism in mice

BackgroundPostprandial dyslipidemia is a causative risk factor for cardiovascular disease. The majority of absorbed dietary lipids are packaged into chylomicron and then delivered to circulation. Previous studies showed that Surfeit4 (Surf4) mediates very low-density lipoprotein secretion from hepatocytes. Silencing hepatic Surf4 markedly reduces the development of atherosclerosis in different mouse models of atherosclerosis without causing hepatic steatosis. However, the role of Surf4 in chylomicron secretion is unknown. MethodsWe developed inducible intestinal-specific Surf4 knockdown mice (Surf4IKO) using Vil1Cre-ERT2 and Surf4flox mice. Metabolic cages were used to monitor mouse metabolism. Enzymatic kits were employed to measure serum and tissue lipid levels. The expression of target genes was detected by qRT-PCR and Western Blot. Transmission electron microscopy and radiolabeled oleic acid were used to assess the structure of enterocytes and intestinal lipid absorption and secretion, respectively. Proteomics was performed to determine changes in protein expression in serum and jejunum. ResultsSurf4IKO mice, especially male Surf4IKO mice, displayed significant body weight loss, increased mortality, and reduced metabolism. Surf4IKO mice exhibited lipid accumulation in enterocytes and impaired fat absorption and secretion. Lipid droplets and small lipid vacuoles were accumulated in the cytosol and the endoplasmic reticulum lumen of the enterocytes of Surf4IKO mice, respectively. Surf4 colocalized with apoB and co-immunoprecipitated with apoB48 in differentiated Caco-2 cells. Intestinal Surf4 deficiency also significantly reduced serum triglyceride, cholesterol and free fatty acid levels in mice. Proteomics data revealed that diverse pathways were altered in Surf4IKO mice. In addition, Surf4IKO mice had mild liver damage, decreased liver size and weight, and reduced hepatic triglyceride levels. ConclusionOur findings demonstrate that intestinal Surf4 plays an essential role in lipid absorption and chylomicron secretion and suggest that the therapeutic use of Surf4 inhibition requires highly cell/tissue-specific targeting. HighlightsO_LIIntestinal Surf4 deficiency reduces chylomicron secretion. C_LIO_LILack of intestinal Surf4 reduces absorption of dietary lipids. C_LIO_LISilencing intestinal Surf4 reduces serum lipid levels. C_LIO_LIIntestinal Surf4 deficiency leads to lipid accumulation in intestinal villi. C_LIO_LIIntestinal Surf4 is essential for dietary lipid absorption and secretion. C_LI

physiology↗

Purkinje cardiomyocytes of the ventricular conduction system are highly diploid but not regenerative

Inefficiency of regeneration underlies many of the pathologies associated with heart injury and disease. Ventricular diploid cardiomyocytes (CMs) are a candidate population that may have enhanced proliferative and regenerative properties [1-3], but subpopulations of diploid CMs and their regenerative capacities are not yet known. Here, using the expression marker Cntn2-GFP and the lineage marker Etv1CreERT2, we demonstrate that peripheral ventricular conduction CMs (Purkinje CMs) are disproportionately diploid (35%, vs. 4% of bulk ventricular CMs). However, this lineage had no enhanced competence to support regeneration after adult infarction. Furthermore, the CM-specific kinase Tnni3k, which strongly influences bulk ventricular CM ploidy [3] and is also associated with conduction system defects [4], had no influence on the ploidy or organization of the ventricular conduction system. Unlike the bulk diploid CM population, a significant fraction of conduction CMs remain diploid by avoiding neonatal cell cycle activity, likely contributing to these properties.

developmental biology↗

The asymmetric Pitx2 regulates intestinal muscular-lacteal development and protects against fatty liver disease

Intestinal lacteals are the essential lymphatic channels for absorption and transport of dietary lipids and drive pathogenesis of debilitating metabolic diseases. Yet, organ-specific mechanisms linking lymphatic dysfunction to disease etiology remain largely unknown. In this study, we uncover a novel intestinal lymphatic program that is linked to the left-right (LR) asymmetric transcription factor Pitx2. We show that deletion of the asymmetric Pitx2 enhancer, ASE, alters normal lacteal development through the lacteal-associated contractile smooth muscle lineage. ASE deletion leads to abnormal muscle morphogenesis induced by oxidative stress, resulting in impaired lacteal extension and defective lymphatic-dependent lipid transport. Surprisingly, activation of lymphatic-independent trafficking directs dietary lipids from the gut directly to the liver, causing diet-induced fatty liver disease. In summary, our studies reveal the molecular mechanism linking gut lymphatic development to the earliest symmetry-breaking Pitx2 and highlight the important relationship between intestinal lymphangiogenesis and gut-liver axis. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=200 SRC="FIGDIR/small/447753v1_ufig1.gif" ALT="Figure 1"> View larger version (41K): org.highwire.dtl.DTLVardef@1a7e81corg.highwire.dtl.DTLVardef@77915forg.highwire.dtl.DTLVardef@1e91610org.highwire.dtl.DTLVardef@1a7911d_HPS_FORMAT_FIGEXP M_FIG GRAPHICAL ABSTRACT C_FIG HIGHLIGHTS[~] Gut lymphangiogenesis is linked to Pitx2-driven LR asymmetry [~]Lacteal-associated smooth muscle requires ASE [~]ASE deletion leads to redox imbalance in intestinal smooth muscle lineage [~]ASE is required for the normal route of dietary lipid transport [~]Pitx2ASE/ASE neonates develop diet-induced fatty liver disease

developmental biology↗

The methodological quality of animal studies: A cross-sectional study based on the SYRCLEs risk of bias tool

ObjectiveTo assess the methodological quality of animal studies published in China and abroad using the SYRCLEs risk of bias tool, and to provide references to improve the methodological quality of animal studies to encourage high quality preclinical studies.\n\nMethodsAn electronic search was performed in the Chinese Scientific Citation Database (CSCD) and Web of Science from 2014 to October 2018. Document screening and data extraction were performed independently by four researchers. The methodological quality of the included studies was assessed using the SYRCLEs risk of bias tool. Statistical analysis was performed using SPSS23.\n\nResultsA total of 2764 animal studies were included. Of the studies, 984 were published in English and 1780 were in Chinese. The citation frequency of more than 90% of the included studies was less than 5. The results of methodological quality assessment showed that 36.36% (8/22) of the sub-items were rated as \"low risk\" in more than 50% of the included studies, of which 75% (6/8) were rated as \"low risk\" in more than 80% of the included studies. A total of 59.09% (13/22) of the sub-items were rated as \"low risk\" in less than 30% of the included studies, of which 92.31% (12/13) were rated as \"low risk\" in less than 10% of the included studies. The incidence of \"low risk\" Chinese studies regarding performance bias, detection bias and reporting bias were lower than English studies. For foreign studies, more attention should be paid to selection bias, attrition bias, and reporting bias.\n\nConclusionWe identified limitations in the methodological quality of animal experiment studies published in China and abroad. We therefore suggest that it is necessary to take targeted measures to popularize the SYRCLEs risk of bias tool to effectively improve the design and implementation of animal experiments, and guide study development.

scientific communication and education↗