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Biology subjects

Starr, M. D.

Publications and source records attributed to Starr, M. D..

2 recordsLinked to original sources

Heparan sulfate modifications of betaglycan promote TIMP3-dependent ectodomain shedding to fine-tune TGF-β signaling.

In pathologies such as cancer, aberrant Transforming Growth Factor-{beta} (TGF-{beta}) signaling exerts profound tumor intrinsic and extrinsic consequences. Intense clinical endeavors are underway to target this pivotal pathway. Central to the success of these interventions is pinpointing factors that decisively modulate the TGF-{beta} responses. Betaglycan/type III TGF-{beta} receptor (T{beta}RIII), is an established co-receptor for the TGF-{beta} superfamily known to bind directly to TGF-{beta}s 1-3 and inhibin A/B. While betaglycan can be membrane-bound, it can also undergo ectodomain cleavage to produce soluble-betaglycan that can sequester its ligands. The extracellular domain of betaglycan undergoes heparan sulfate and chondroitin sulfate glycosaminoglycan modifications, transforming betaglycan into a proteoglycan. Here we report the unexpected discovery that the heparan sulfate modifications are critical for the ectodomain shedding of betaglycan. In the absence of such modifications, betaglycan is not shed. Such shedding is indispensable for the ability of betaglycan to suppress TGF-{beta} signaling and the cells responses to exogenous TGF-{beta} ligands. Using unbiased transcriptomics, we identified TIMP3 as a key regulator of betaglycan shedding and thereby TGF-{beta} signaling. Our results bear significant clinical relevance as modified betaglycan is present in the ascites of patients with ovarian cancer and can serve as a marker for predicting patient outcomes and TGF-{beta} signaling responses. These studies are the first to demonstrate a unique reliance on the glycosaminoglycan modifications of betaglycan for shedding and influence on TGF-{beta} signaling responses. Dysregulated shedding of TGF-{beta} receptors plays a vital role in determining the response and availability of TGF-{beta}s, which is crucial for prognostic predictions and understanding of TGF-{beta} signaling dynamics.

biochemistry↗

Reciprocal epigenetic Sox2 regulation by SMAD1-SMAD3 is critical for anoikis resistance and metastasis in cancer

Growth factors in the tumor environment are key regulators of cell survival and metastasis. Here we reveal, dichotomy between TGF-{beta} superfamily growth factors BMP and TGF-{beta}/activin, and their downstream SMAD effectors. Gene expression profiling uncovered Sox2 as a key signaling node regulated in an opposing manner by anoikis-promoting BMP2, 4 and 9, and anoikis-suppressing TGF-{beta} and activin A. We find that Sox2 repression by BMPs robustly inhibits intraperitoneal tumor burden and increases survival in multiple ovarian cancer models. Repression of Sox2 is driven by SMAD1 dependent histone H3K27me3 recruitment and DNA methylation at SOX2s promoter. Conversely, TGF-{beta} and activin A promote Sox2 expression, and anoikis resistance by SMAD3 mediated histone H3K4me3 recruitment. We find that balancing Sox2 levels is critical for anoikis, as transcriptomics reveals regulation of key cell death pathways. Moreover, BMP-driven SMAD1 signaling can override TGF-{beta} and activins effect on Sox2, which has clinical significance due to the high levels of TGF-{beta} we find in ovarian cancer patients. Together, our findings identify Sox2 as a contextual and contrastingly regulated key node, downstream of TGF-{beta} superfamily members controlling anoikis and metastasis in ovarian cancers. HighlightsO_LISox2 is a key node for anoikis resistance in cancer C_LIO_LISox2 is differentially regulated by TGF-{beta}/activin and BMPs in broad cancers C_LIO_LIBMP9 is a robust metastasis suppressor by lowering Sox2 C_LIO_LISox2 regulation is contextual, epigenetic and at the transcriptional level C_LI

cancer biology↗