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Heidi P. Feigenbaum

Publications and source records attributed to Heidi P. Feigenbaum.

2 recordsLinked to original sources

Experimental Characterization of the Passive Mechanical Behavior of Rat Pelvic Floor Muscles: Effects of Test Conditions and Pregnancy

Purpose: Pelvic floor muscles undergo large deformations during vaginal delivery, yet the passive tensile behavior of pregnant and non-pregnant pelvic floor muscle and the influence of testing protocols remain incompletely characterized. This study evaluated how pregnancy, loading rate, preconditioning, and storage affect passive tensile mechanics of rat pelvic floor muscle. Methods: Levator ani samples from pregnant and non-pregnant rats were tested in uniaxial tension to failure across multiple preconditioning amplitudes, two loading rates, and fresh or frozen storage conditions. Peak and transition metrics, strain energy density, toe-region stiffness, and high-strain stiffness were extracted using automated region-detection methods. Rat properties were also compared with digitized human cadaver levator ani data. Results: Pregnant rat samples reached greater peak strains than controls, although the difference was not significant. Preconditioning affected peak strain in a loading-rate-dependent manner: responses tapered near 2% preconditioning strain at 0.5% strain/s, whereas no comparable tapering occurred through 15% at 1% strain/s. Compared with human cadaver data, rat samples reached substantially larger peak strains and lower high-strain stiffness. Conclusion: This study provides one of the first direct experimental comparisons of passive pelvic floor muscle mechanics between pregnant and non-pregnant tissue, while systematically evaluating how multiple testing-protocol variables influence the measured response. Distinguishing protocol-dependent variability from biological differences provides a more reproducible basis for cross-study comparison and constitutive model calibration. Rat pelvic floor muscle is a useful model for pregnancy-associated adaptation, but absolute mechanical values should be translated to human tissue cautiously.

cond-mat.soft↗

Moisture-driven CO2 direct air capture and delivery for cultivating cyanobacteria

A moisture-driven air capture system was developed and demonstrated for cultivating cyanobacteria and microalgae at the flask (50 mL), bench (12 L) and small pilot (840 L) scale. Purolite A501 anion exchange resin beads were found to be biocompatible and rapidly deliver air-captured CO2 when immersed directly in an alkaline cultivation medium containing cyanobacteria or microalgae. Flask-scale cultivation trials showed A501 could sustain rapid growth (190 mg/L/d) of the cyanobacterium Synechocystis sp. PCC 6803 strain engineered to produce laurate. A bench-scale system installed in a laminar flow hood was able to deliver 2 g CO2/d into abiotic alkaline cultivation medium and 0.5 g/d in the presence of Synechocystis to support vigorous growth (39 mg/L/d) limited by the CO2 delivered by the sorbent. A small pilot-scale system installed in a 4.2 m2 outdoor raceway pond in Mesa, Arizona was able to deliver 100 g CO2/d into abiotic alkaline cultivation medium. Exopolysaccharides and other products excreted by Synechocystis 6803 covered the sorbent beads, reducing their capacity to 25%, which could be partially restored to 70% capacity using a wash protocol, but the CO2 delivery kinetics remained 3-4 fold slower. Analysis of the sorbent beads used as part of four separate outdoor cultivation trials with over 300 days of outdoor wet and dry cycling over four seasons showed significant mechanical fracturing. Infrared spectroscopy and thermogravimetric analysis showed a significant loss of NR4+ functional groups necessary for CO2 capture correlated with extended use. Under the assumption that abiotic performance eventually can be retained by delivering CO2 into the media recycle stream in a way that avoids biofouling, technoeconomic and life cycle analyses show the viability of a small first-of-a-kind biorefinery producing 500 barrels per day of biofuel.

cond-mat.soft↗