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Marino-Melendez, A.

Publications and source records attributed to Marino-Melendez, A..

3 recordsLinked to original sources

Cdc42 small GTPase is a novel regulator of the fibrogenic activation of human intestinal myofibroblasts

Cell division cycle 42 (Cdc42) is a member of the Rho family of small GTPases, which plays crucial roles in regulating cytoskeletal remodeling, and membrane trafficking. While previous studies implicated Cdc42 in controlling intestinal epithelial homeostasis, the involvement of this small GTPase in the process of intestinal fibrogenesis remains unexplored. Our study was designed to determine whether Cdc42 regulates the fibrogenic activation of intestinal myofibroblasts in vitro. The study was conducted using a CCD-18Co normal human colonic fibroblast cell line, and primary human intestinal myofibroblasts (HIMF) isolated from Crohns disease (CD) patients. CCD-18Co and HIMF cells were stimulated by transforming growth factor-{beta}1 (TGF-{beta}1). Cdc42 was inhibited either genetically, using siRNA-mediated knockdown, or pharmacologically using specific Cdc42 inhibitors, ML141 and CASIN. Genetic and pharmacologic inhibition of Cdc42 markedly reduced TGF-{beta}1 induced expression of the major contractile cytoskeletal proteins, -smooth muscle actin, calponin 1 and L-caldesmon. Furthermore, Cdc42 inhibition significantly attenuated expression of key extracellular matrix (ECM) proteins, fibronectin and collagen I, in activated CCD-18Co cells and HIMF. Interestingly, decreased expression of contractile and ECM proteins in Cdc42-depleted myofibroblasts was not due to downregulation of the TGF-{beta}1 signaling, decreased mRNA transcription or increased lysosomal or proteasomal degradation of these proteins. Such suppressed pro-fibrotic activation of Cdc42-deficient CCD-18Co cells and HIMF involved a selective inhibition of protein translation due to inactivation of the AKT-mammalian target of rapamycin (mTOR) signaling module. These findings highlight Cdc42 as a key regulator of intestinal fibrosis that controls mTOR activation to enhance ECM production and contractile actomyosin cytoskeleton in intestinal myofibroblasts. In briefZafar et al. unravel a novel role of Cdc42 small GTPase in fibrogenic activation of human intestinal myofibroblasts. Genetic and pharmacologic inhibition of Cdc42 markedly reduced TGF-{beta} induced expression of contractile cytoskeletal proteins and extracellular matrix proteins in activated myofibroblasts. The mechanisms underlying such profibrotic activity of Cdc42 involve regulation of de novo protein translation via activation of the AKT-mTOR signaling module. HighlightsO_LICdc42 regulates TGF-{beta} dependent activation of human intestinal myofibroblasts C_LIO_LIProfibrotic activity of Cdc42 involves regulation of de novo protein translation C_LIO_LICdc42 regulates myofibroblast activation via AKT-mTOR signaling pathway C_LIO_LITargeting Cdc42-Akt-mTOR signaling may facilitate the development of novel antifibrotic therapies C_LI

cell biology↗

MYOSIN IIA MOTOR REGULATES ATTACHING-EFFACING BACTERIA INTERACTIONS WITH INTESTINAL EPITHELIUM

Attaching effacing (A/E) bacteria, such as Enteropathogenic E. coli (EPEC) and Citrobacter rodentium, colonize intestinal epithelial cells (IECs) by inducing remodeling of the epithelial cytoskeleton and formation of prominent actin pedestals at bacterial attachment sites. While non-muscle myosin II (NM II) is a key regulator of the actin cytoskeleton, whether it regulates IEC colonization by A/E pathogens is not known. To address this question, we targeted NM IIA and NM IIC, the NM II paralogs expressed in IECs. Our in vivo studies utilized mouse models with either intestinal epithelial-specific deletion of NM IIA (NM IIA cKO mice), expression of a NM IIA motor domain mutant, or total deletion of NM IIC (NM IIC tKO mice). In vitro experiments utilized IECs (HT-29cF8 and Caco-2BBE) with CRISPR-Cas9-mediated deletion of NM IIA or NM IIC. In addition, NM II activity in vitro was modulated pharmacologically, using either the pan-myosin inhibitor, blebbistatin, or a specific NM IIC activator, 4-hydroxyacetophenone (4-HAP). NM IIA cKO and NM IIA mutant mice demonstrated higher C. rodentium colonization along with more severe mucosal inflammation and colonic crypt hyperplasia as compared to their controls. By contrast, NM IIC tKO mice was indistinguishable from their control with regard to C. rodentium colonization. Blebbistatin treatment increased EPEC attachment to IECs monolayers, whereas 4-HAP did not affect bacterial attachment. Genetic knockout of NM IIA, but not NM IIC, increased EPEC adhesion to IEC monolayers. Importantly, the increase in EPEC attachment exhibited by NM IIA-deficient IECs required intact bacterial Type 3 secretion system and functional Tir effector, indicating that NM IIA functions in actin pedestal assembly. In summary, we describe a novel role for NM IIA in limiting intestinal epithelial colonization by A/E pathogens via inhibition of pathogen-induced remodeling of the actin cytoskeleton.

cell biology↗

The Septin Cytoskeleton is a Novel Regulator of Intestinal Epithelial Barrier Integrity and Mucosal Inflammation

Background and AimsIntestinal epithelial barrier-integrity is essential for human health, and its disruption induces and exacerbates intestinal inflammatory disorders. While the cytoskeleton is critical for maintaining gut barrier-integrity, the role of the septins- the newest family of cytoskeletal proteins- is unknown. To address this knowledge gap, we evaluate the role of SEPT9- a critical component of the septin-cytoskeleton- in intestinal epithelial cell (IEC) barrier permeability and inflammation. MethodsWe developed SEPT9-NeonGreen knockin mice, inducible intestinal epithelial cell (IEC)-specific SEPT9 knockout (KO) mice, and SEPT9-KO human IEC lines. SEPT9 localization was analyzed using super-resolution microscopy. Barrier-integrity was assessed via transepithelial electrical resistance, FITC-dextran flux, and visualization of tight junction (TJ) and adherens junction (AJ) proteins. Dextran sodium sulfate-induced experimental colitis was evaluated in control and KO mice through measuring cytokine expression, immune cell infiltration, and IEC death. SEPT9 expression was examined in intestinal tissue of IBD patients. ResultsSEPT9 overlapped with TJs and AJs at IEC apical junctions. SEPT9 loss resulted in a leaky epithelial barrier due to mislocalization of junctional proteins. SEPT9 interacted with non-muscle myosin IIC (NMIIC) at the IEC apical-junctional actomyosin belt, and its ablation displaced NMIIC from IEC junctions. Loss of NMIIC also caused barrier disruption. SEPT9 KO mice exhibited increased susceptibility to experimental-colitis. SEPT9 expression was significantly reduced in intestinal mucosa of IBD patients. ConclusionSEPT9 regulates intestinal barrier integrity, supporting TJ and AJ assembly through NMIIC recruitment to the actomyosin belt. SEPT9 safeguards the intestinal mucosa during acute inflammation, and its reduced expression in IBD suggests a loss of this protective function. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=126 SRC="FIGDIR/small/629767v1_ufig1.gif" ALT="Figure 1"> View larger version (39K): org.highwire.dtl.DTLVardef@5141dcorg.highwire.dtl.DTLVardef@bae524org.highwire.dtl.DTLVardef@19c8eaorg.highwire.dtl.DTLVardef@d5b218_HPS_FORMAT_FIGEXP M_FIG C_FIG

physiology↗