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Biology subjects

Martin, D. K.

Publications and source records attributed to Martin, D. K..

2 recordsLinked to original sources

Glycation enhances protein association with lipid bilayer membranes

Glycation is a non-enzymatic post-translational modification that leads to the formation of advanced glycation end-products (AGEs), which accumulate in the blood-stream under chronic hyperglycemia and are implicated in diabetes-related pathologies. While glycated proteins such as albumin or hemoglobin are widely used as biomarkers for glycemic control, the structural and chemical changes induced by glycation may also alter their interactions with lipid interfaces, including cellular membranes and lipoproteins, potentially affecting their biological distribution and diagnostic detectability. In this study, we investigated how glycation influences the interaction of bovine serum albumin (BSA) with supported lipid bilayers (SLBs) of different compositions, used as model systems to replicate the diversity of membrane surface charges and fluidity. Using neutron reflectometry (NR), we compared the membrane association of BSA and a chemically-enhanced glycated form of BSA (gBSA), focusing on nanostructural changes at the bilayer interface. Our results showed negligible interaction of either proteins with zwitterionic or cationic membranes. In contrast, both BSA and gBSA exhibited significant binding to negatively charged bilayers, with glycation significantly amplifying this interaction. Quantitatively, the membrane-associated protein volume fraction increased from 0.11 (BSA) to 0.17 (gBSA), suggesting that glycation modifies the proteins surface properties in ways that promote stronger lipid interactions with negatively charged membranes. These findings suggest that glycation not only affects protein structure but also modulates protein-membrane affinity in a lipid-dependent manner. This has important implications for the bioavailability and behavior of glycated albumin in the bloodstream, potentially influencing the accuracy of clinical assays and contributing to membrane-related pathophysiology in diabetes. Our work highlights the need for a deeper understanding of glycation-induced changes in protein-lipid interactions and their consequences for biomarker reliability and disease mechanisms. Graphical TOC Entry O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=82 SRC="FIGDIR/small/685514v1_ufig1.gif" ALT="Figure 1"> View larger version (24K): org.highwire.dtl.DTLVardef@150e71aorg.highwire.dtl.DTLVardef@749b35org.highwire.dtl.DTLVardef@179f468org.highwire.dtl.DTLVardef@19cfe8e_HPS_FORMAT_FIGEXP M_FIG C_FIG

biophysics↗

Two morphologically distinct formae speciales in Neonectria magnoliae differ in their virulence on Magnolia family hosts Liriodendron tulipifera and Magnolia fraseri

The family Nectriaceae includes numerous phytopathogenic fungal genera that cause canker diseases on both angiosperm and conifer hosts worldwide. Among these, Neonectria species are globally important canker pathogens of numerous hosts, but their roles in contributing to forest decline and mortality outside their role in beech bark disease and apple canker are largely understudied. In the U.S., Neonectria magnoliae causes perennial cankers on two native hosts in central Appalachia: Fraser magnolia (Magnolia fraseri) and tulip-poplar (Liriodendron tulipifera) and has been recently confirmed from non-native star magnolia (Magnolia stellata) in West Virginia. Both native hosts occur in the central Appalachian Mountains, but Fraser magnolia occurs mostly at higher elevations. Neonectria magnoliae was first described in 1943, yet its impact across the forested landscape remains unclear. To clarify host-specific differences across the contemporary range of Neonectria magnoliae, we used multi-locus phylogenetics, comparative pathogenicity / virulence assays, and morphological analyses to determine if N. magnoliae represents two cryptic species that specialize on tulip-poplar and magnolia, or if N. magnoliae has host-specific pathotypes. Our studies revealed two morphologically distinct formae speciales within N. magnoliae: 1) Neonectria magnoliae f. sp. liriodendri; strains originating from tulip-poplar with increased virulence on this host and lacking macroconidia production and 2) Neonectria magnoliae f. sp. magnoliae; strains originating from Fraser magnolia with increased virulence on this host and producing macroconidia readily in culture. Overall, the incidence of these two pathotypes indicates that neither pathogen alone poses serious risks to either host but adds to cumulative stresses that both tree species are experiencing in the face of global climate change.

microbiology↗