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Batebi, H.

Publications and source records attributed to Batebi, H..

3 recordsLinked to original sources

Kinetic asymmetry drives directionality in an ATP-binding cassette transporter

How ATP binding and hydrolysis directionally reshape the conformational landscape remains unknown for ATP-binding cassette (ABC) transporters. Here, we identify two conserved ionic locks within the nucleotide-binding domains that govern transition barriers and energy transduction: an intra-subunit inward-facing (IF)-lock and an inter-subunit outward-facing (OF)-lock. Mg2+-ATP acts as a molecular key that disrupts the IF-lock, driving the forward transition. Following ATP hydrolysis, release of the {gamma}-phosphate, which, together with Mg2+, forms the pivot of the OF-lock, initiates the reverse transition. Directionality arises from kinetic asymmetry, driven by an anticorrelated exchange of the rate-limiting step between the consensus nucleotide-binding site and the transmembrane domains during forward and reverse transitions, respectively. Conservation of these molecular locks reveals a universal blueprint for ATP-driven mechanical transduction across the ABC superfamily.

biophysics↗

Enhanced Pathogenicity and Contact Transmissibility of Human-origin Avian Influenza H5N1 Clade 2.3.4.4b Genotype B3.13 Compared to D1.1 in Ferrets

Since its emergence in 2020, multiple genotypes of the H5N1 clade 2.3.4.4b have been identified, with B3.13 and D1.1 emerging in the USA as two major and concerning genotypes. However, their relative pathogenicity and transmissibility in mammals have not been fully elucidated. We compared the pathogenicity and transmissibility of the first two human H5N1 clade 2.3.4.4b cases caused by B3.13 in Texas (A/Texas/37/2024; HPhTX B3.13) and D1.1 in Louisiana (A/Louisiana/12/2024; HPhLA D1.1) in a ferret model of infection and transmission. HPhTX B3.13 infection resulted in more severe clinical disease and enhanced viral shedding, with evidence of increased transmission relative to HPhLA D1.1. Histopathological analysis revealed more extensive lung pathology in animals infected with HPhTX B3.13, consistent with increased viral loads and inflammatory responses. Importantly, both genotypes showed no significant differences in reactivity to ferret sera raised against candidate vaccine virus (CVV) strains, receptor binding properties, or neuraminidase (NA) activity and thermostability. Whole-genome sequencing revealed no adaptive mutations in HPhTX B3.13 following infection or transmission. In contrast, HPhLA D1.1 showed rapid acquisition of the mammalian-adaptive mutation E627K in infected ferrets and both E627K and Q194K in the only fatal contact animal. Both mutations were associated with enhanced polymerase activity and computational analyses suggested that they enhance interactions with the mammalian host factors ANP32A and B. Our findings indicate that B3.13 is already well adapted for mammalian infection and transmission whereas D1.1 retains evolutionary potential through the rapid acquisition of adaptive mutations, highlighting important genotype-specific differences relevant to zoonotic risk assessment and pandemic preparedness. SignificanceInfluenza H5N1 viruses continue to diversify genetically while expanding into mammalian hosts, increasing opportunities for viral adaptation and zoonotic transmission, including humans. However, whether the predominant clade 2.3.4.4b genotype differs in its capacity to infect, transmit, and evolve in mammals remains poorly understood. Using the ferret model of influenza infection and transmission, we demonstrated that the currently circulating B3.13 and D1.1 genotypes exhibit distinct pathogenic and transmission characteristics despite retaining similar receptor-binding characteristics, NA functions, and antigenic profiles. While B3.13 readily infects and transmits in ferrets and does not develop further adaptive mutations associated with increased replication and transmission, D1.1 rapidly acquires mammalian-adaptive mutations after a single infection and/or transmission event, highlighting its evolutionary potential. These findings show that genotype-specific biological properties can influence zoonotic risk independently of antigenic similarity and emphasize the importance of integrating phenotypic characterization with genomic surveillance to improve pandemic preparedness and guide public health risk assessment.

microbiology↗

Time-resolved cryo-EM of G protein activation by a GPCR

G protein-coupled receptors (GPCRs) activate heterotrimeric G proteins by stimulating the exchange of guanine nucleotide in the G subunit. To visualize this mechanism, we developed a time-resolved cryo-EM approach that examines the progression of ensembles of pre-steady-state intermediates of a GPCR-G protein complex. Using variability analysis to monitor the transitions of the stimulatory Gs protein in complex with the {beta}2-adrenergic receptor ({beta}2AR) at short sequential time points after GTP addition, we identified the conformational trajectory underlying G protein activation and functional dissociation from the receptor. Twenty transition structures generated from sequential overlapping particle subsets along this trajectory, compared to control structures, provide a high-resolution description of the order of events driving G protein activation upon GTP binding. Structural changes propagate from the nucleotide-binding pocket and extend through the GTPase domain, enacting alterations to G Switch regions and the 5 helix that weaken the G protein-receptor interface. Molecular dynamics (MD) simulations with late structures in the cryo-EM trajectory support that enhanced ordering of GTP upon closure of the alpha-helical domain (AHD) against the nucleotide-bound Ras-homology domain (RHD) correlates with irreversible 5 helix destabilization and eventual dissociation of the G protein from the GPCR. These findings also highlight the potential of time-resolved cryo-EM as a tool for mechanistic dissection of GPCR signaling events.

physiology↗