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Marrs, G.

Publications and source records attributed to Marrs, G..

2 recordsLinked to original sources

Nonlinear Relationships of Fibrin Network Structure as a Function of Fibrinogen and Thrombin Concentrations for Purified Fibrinogen and Plasma Clots

BackgroundFibrinogen levels are associated with bleeding disorders and thrombotic disease. Thrombin converts fibrinogen to fibrin, producing the load-bearing fibrin scaffold that governs clot mechanics and transport. ObjectiveQuantitatively map how initial fibrinogen and thrombin concentrations, [Fgn]0 and [T[h]r]0, determine fibrin architecture in human plasma and a purified fibrinogen system. MethodsScanning electron microscopy was used to quantify single-fiber morphology--fiber diameter and branch-to-branch segment length from a standardized sample-preparation protocol. Confocal microscopy was used to quantify network architecture--projected fiber density and pore/bubble size. Results and ConclusionsAcross plasma and purified systems, fibrin structural parameters were quantitatively captured by compact multiplicative scaling laws of the form Y = k[Fgn]0[T[h]r]0{beta}. Unlike prior studies, which examined narrower condition ranges without establishing predictive equations across a systematic fibrinogen-thrombin concentration matrix, this framework defines distinct, quantitative roles for fibrinogen and thrombin in fibrin assembly. The magnitudes and signs of the exponents and {beta} indicate that thrombin primarily controls individual fiber growth kinetics, strongly shortening branch-to-branch segment length and modestly thinning fibers, whereas fibrinogen primarily controls space filling, strongly increasing fiber density, reducing pore/bubble size, and thickening fibers. For matched [Fgn]0 and [T[h]r]0, compared to plasma clots, purified fibrinogen formed denser networks with thinner and shorter fibers, suggesting that the plasma biochemical environment partially inhibits thrombin activity. Fiber length analysis further suggests that each thrombin molecule nucleates one fiber segment. Together, these parameterized scaling relations provide a predictive quantitative framework linking clot composition to fibrin microstructure in plasma and purified fibrinogen clots.

biophysics↗

A mutation in the transmembrane domain of Adenylate cyclase 3 impairs enzymatic function to cause sex-specific depression- and anxiety-like behaviors and food seeking in a rat model

We have previously demonstrated that a transmembrane domain mutation in Adenylate cyclase 3 (Adcy3) causes increased adiposity and negative emotion-like behaviors in a rat model. We set out to replicate and expand upon our previous study by conducting comprehensive behavioral testing, and we also investigated the molecular changes that result from this mutation. Rats with a mutation in the second transmembrane helix of ADCY3 (Adcy3mut/mut) and wild-type rats were fed a high-fat diet for 12 weeks. We measured body weight, body composition, and depression-like and anxiety-like behaviors using the following tests: sucrose splash test, sucrose preference test, forced swim test, open field test, elevated plus maze, successive alleys test, and novelty-suppressed feeding. We also measured serum leptin levels, hypothalamic cyclic AMP (cAMP) production, and membrane fraction ADCY3 content. Adcy3mut/mut male and female rats had increased adiposity. Adcy3mut/mut males showed increased despair- and anxiety-like behaviors, food seeking, and higher leptin levels relative to wild-type males. Adcy3mut/mut females showed only mildly increased anxiety-like behaviors relative to wild-type females. Adcy3mut/mut rats of both sexes had decreased cAMP production in the hypothalamus, with no changes in ADCY3 content in the membrane fraction. We conclude that the transmembrane domain of ADCY3 plays a critical role regulating adiposity and behavior, as well as cAMP production. There were key differences between males and females for the observed phenotypes. This study supports the idea that Adcy3 contributes to emotion-like behaviors and potentially mental health disorders, and that the transmembrane domain of ADCY3 is important for protein function.

neuroscience↗