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Biology subjects

Mahendroo, M.

Publications and source records attributed to Mahendroo, M..

4 recordsLinked to original sources

Lysyl Oxidases are Necessary for Myometrial Contractility and On-Time Parturition in Mice

The extracellular matrix (ECM) plays a pivotal role in the maintenance of tissue mechanical homeostasis. Collagens and elastic fibers are the most predominant fibrous ECM proteins providing tissue mechanical function through covalent cross-linking which is mediated by the lysyl oxidase family of enzymes. In this study, the function of lysyl oxidases in maintaining the integrity of the extracellular matrix in the myometrium and its impact on parturition-timing was investigated. Gene and protein expression analyses demonstrate that a sub-set of the lysyl oxidase family of enzymes are highly induced in pregnant myometrium. Inhibition of the activity of the lysyl oxidase family of enzymes through {beta}-aminopropionitrile (BAPN) delays parturition in mice, in part, due to myometrial dysfunction. In BAPN treated mice, the expression of genes encoding contraction associated proteins such as connexin 43, oxytocin receptor and prostaglandin synthase 2 is significantly reduced in the myometrium compared to the untreated control mice. Proteomic analysis revealed that the composition of the ECM is altered in response to BAPN treatment which demonstrates that the inhibition of the activity of lysyl oxidases disrupted the integrity of the myometrial ECM. Our findings demonstrate that the lysyl oxidases-mediated ECM function is necessary for the myometrium to transition from a quiescent to a contractile phenotype at term for on-time parturition.

physiology↗

Relaxin Modulates the Genomic Actions and Biological Effects of Estrogen in the Myometrium by Reducing Estrogen Receptor Alpha Phosphorylation

Estradiol (E2) and relaxin (Rln) are steroid and polypeptide hormones, respectively, with important roles in the female reproductive tract, including myometrium. Some actions of Rln, which are mediated by its membrane receptor RXFP1, require or are augmented by E2 signaling through its cognate nuclear steroid receptor, estrogen receptor alpha (ER). In contrast, other actions of Rln act in opposition to the effects of E2. Here we explored the molecular and genomic mechanisms that underlie the functional interplay between E2 and Rln in the myometrium. We used both ovariectomized female mice and immortalized human myometrial cells expressing wild-type or mutant ER (hTERT-HM-ER cells). Our results indicate that Rln modulates the genomic actions and biological effects of estrogen in the myometrium and myometrial cells by reducing phosphorylation of ER on serine 118 (S118), as well as by reducing the E2-dependent binding of ER across the genome. These effects were associated with changes in the hormone-regulated transcriptome, including a decrease in the E2-dependent expression of some genes and enhanced expression of others. The inhibitory effects of Rln cotreatment on the E2-dependent phosphorylation of ER required the nuclear dual-specificity phosphatases DUSP1 and DUSP5. Moreover, the inhibitory effects of Rln were reflected in a concomitant inhibition of the E2-dependent contraction of myometrial cells. Collectively, our results identify a pathway that integrates Rln/RXFP1 and E2/ER signaling, resulting in a convergence of membrane and nuclear signaling pathways to control genomic and biological outcomes.

molecular biology↗

Cervical collagen network porosity assessed by SHG endomicroscopy distinguishes preterm and normal pregnancy - a pilot study

Structured AbstractO_ST_ABSBackgroundC_ST_ABSPreterm birth (PTB) is a global public health issue affecting millions of newborns every year. Orchestrated remodeling of the cervix is essential for normal pregnancy and birth, while PTB is closely related with premature cervical ripening and loss of cervical mechanical strength. The structure and organization of fibrillar collagen in the extracellular matrix are of vital importance to the biomechanical properties of the cervix. Second harmonic generation (SHG) microscopy has proved capable of revealing the progressive changes in cervical collagen morphology over the course of pregnancy. To translate this promising imaging technology to clinical practice, a flexible SHG endomicroscope has long been envisaged for label-free, non-invasive visualization of cervical collagen architecture and for assessment of PTB risk. ObjectiveTo evaluate the potential of our newly-developed SHG endomicroscope for imaging-based differentiation of cervical collagen architecture between normal pregnant mice and RU486/mifepristone-induced PTB mouse models. Study DesignWe undertook endomicroscopy SHG imaging of cervical collagen on two types of ex vivo samples: 1) frozen cervical tissue sections ([~]50 {micro}m thick) and 2) resected intact cervices, and performed SHG-image-based quantitative collagen morphology analysis to distinguish RU486 mouse models from normal pregnant mice. ResultsEndomicroscopic SHG images of cervical tissue sections from mifepristone-treated mouse models exhibit statistically larger collagen fiber diameter, increased pore size, and reduced pore numbers than those of normal pregnant mice. Similar changes are also observed on SHG images of subepithelial collagen fibers acquired from intact cervices by the endomicroscope. ConclusionThe experiment results demonstrated that SHG endomicroscopy along with quantitative image analysis holds promising potential for clinical assessment of cervical collagen remodeling and preterm birth risk.

bioengineering↗

Dynamic states of cervical epithelia during pregnancy and epithelial barrier disruption

The cervical epithelium undergoes continuous changes in proliferation, differentiation, and function that are critical before pregnancy to ensure fertility and during pregnancy to provide a physical and immunoprotective barrier for pregnancy maintenance. Barrier disruption can lead to the ascension of pathogens that elicit inflammatory responses and preterm birth. Here, we identify cervical epithelial subtypes in nonpregnant, pregnant, and in-labor mice using single-cell transcriptome and spatial analysis. We identify heterogeneous subpopulations of epithelia displaying spatial and temporal specificity. Notably, two goblet cell subtypes with distinct transcriptional programs and mucosal networks were dominant in pregnancy. Untimely basal cell proliferation and goblet cells with diminished mucosal integrity characterize barrier dysfunction in mice lacking hyaluronan. These data demonstrate how the cervical epithelium undergoes continuous remodeling to maintain dynamic states of homeostasis in pregnancy and labor, and provide a framework to understand perturbations in epithelial health and host-microbe interactions that increase the risk of premature birth.

cell biology↗