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Biology subjects

Quinn, K. N.

Publications and source records attributed to Quinn, K. N..

2 recordsLinked to original sources

Reinnervation of Muscle Targets Enhances the Separability of Motor Unit Signals Following Peripheral Nerve Transfers

After amputation, advanced prosthetic limbs offer a promising means of restoring motor function. However, state-of-the-art prostheses often rely on aggregate electromyogram (EMG) signals to decode motor intention, which limits their ability to replicate natural limb movements. Decomposing EMG signals into individual motor unit components has shown potential for more natural control, but distinguishing between individual units can be challenging when nearby signals overlap. This study demonstrates that muscle target reinnervation surgeries can naturally increase physical separation between motor unit signals, thereby mitigating this overlap. Reinnervation of individual motor units is evaluated in a rodent hindlimb model after direct nerve-to-muscle implantation. Histological and electrophysiological analyses reveal that structural changes following reinnervation surgery result in beneficial motor unit signal changes, particularly improving spatial separation between motor unit signals compared to those in intact muscle. This spatial separation contributed to fewer instances of complex, overlapping signals in reinnervated muscle recordings. Motor unit signals were leveraged to provide a proof-of-concept of precise control of a virtual prosthesis for the first time after direct nerve-to-muscle implantation surgery. These findings highlight the potential of reinnervated muscle targets as key biological interfaces that facilitate motor unit separation, reducing the burden on decomposition algorithms and improving prosthetic control.

bioengineering↗

Mycobacterium intracellulare ABSURDO is a novel clinical isolate with three colony morphotypes that vary in pathogenicity and sequence at the PKS and MtrA loci

Mycobacterium intracellulare is a nontuberculous mycobacteria (NTM) species which can cause serious and sometimes fatal disease in immunocompromised individuals. Other NTM species, including M. avium and M. abscessus, commonly exhibit two colony morphotypes (smooth and rough) which vary in appearance and liquid growth properties. Here we characterize a novel clinical isolate of M. intracellulare which exhibits three (not two) colony morphotypes which differ in appearance, liquid growth properties, acid-fastness and in vivo survival following infection of mice via an inhalational exposure model. The genome of this isolate, which we have termed ABSURDO, as well as the genome of each morphotype components, aligns with that of M. intracellulare yet contains [~]16% more protein coding sequences than the M. intracellulare type strain ATCC 13590T. Variation analysis of each morphotype genome revealed that across the three morphotypes there were only two mutations which had a high likelihood of causing a phenotype due to a genetic change: one in the gene encoding modular polyketide synthase (PKS), and another in the two component system response regulator MtrA. Neither of these genes have been previously implicated in the morphotype shifting of an NTM. In summary, M. intracellulare ABSURDO is a novel pathogenic isolate with a genome that aligns with (but is nevertheless larger than) the M. intracellulare type strain and comprises three morphotype components which differ in two genes that have not been implicated in NTM appearance, acid-fastness, in vitro and in vivo growth.

microbiology↗