DOI: 10.1021/acs.biomac.6c01387 ISSN: 1525-7797

Antibiotic-Loaded Fibers of Polyhydroxyalkanoate Blends: Morphological Evolutions and Strain-Induced Micromechanics

Ramin Hosseinnezhad, Dhanumalayan Elumalai, Mehrnaz Khalaji

Abstract

Electrospun fibers of polyhydroxyalkanoate (PHA), blended with PCL or PBS, were loaded with linezolid (LIN) to investigate induced morphological evolution, crystallization, and strain-induced deformation micromechanics. Up to the optimal nucleating concentration of 2 wt %, LIN was fully encapsulated, increasing PCL crystallinity from 33% to 72% and PHA crystallization enthalpy by 56%. At 3 wt %, PHA/PBS fibers developed discrete hollow, anisotropic LIN crystalline clusters through confinement-directed growth, whereas PHA/PCL fibers displayed a homogeneous nano-granular surface coating of LIN. Solid-state NMR revealed closer segmental interactions in PHA/PBS and moderate phase separation in PHA/PCL. In situ tensile SAXS and SEM disclosed brittle craze-to-crack fracture in PHA/PBS−LIN fibers but semi-ductile deformation in PHA/PCL−LIN fibers, involving multiple crazes, necking, and the in situ generation of an internal nanofibrillar bridging network within the craze cavities. This morphology, formed by flow-induced and LIN-nucleated crystallization, modulates the deformation mechanism and supports the design of PHA antibiotic-loaded scaffolds with controlled release.