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Capel, A. J.

Publications and source records attributed to Capel, A. J..

2 recordsLinked to original sources

Bioengineered model of the human motor unit with physiologically functional neuromuscular junctions

Investigations of the human neuromuscular junction (NMJ) have predominately utilised experimental animals and model organisms. Consequently, there remains a paucity of data regarding the development of the human NMJ and a lack of systems that enable temporal investigation of the motor unit. This work addresses this need, providing the methodologies to bioengineer 3D models of the human motor unit. Separate maturation of primary human skeletal muscle and iPSC derived motor neurons seeks to accurately represent neuromuscular development via controlled addition of motor axons following primary myogenesis. Spheroid cultures of motor neuron progenitors augmented the transcription of OLIG2, ISLET1 and SMI32 motor neuron mRNAs [~]400, [~]150 and [~]200-fold respectively. Axon projections of adhered motor neuron spheroids exceeded 1000m in monolayer, with transcription of SMI32 and VACHT mRNAs further enhanced in a concentration dependent manner within optimised 3D type I collagen extracellular matrices. Bioengineered skeletal muscles produce functional forces, demonstrate increased acetylcholine receptor (AChR) clustering, and transcription of MUSK and LRP4 mRNAs indicating enhanced organisation of the post-synaptic membrane. Dosed integration of motor neuron spheroids outlined the motor pool required to functionally innervate muscle tissues in 3D, generating physiologically functional human NMJs that evidence pre- and post-synaptic membrane and motor nerve terminal co-localisation. Spontaneous firing was significantly elevated in 3D motor units, confirmed to be driven by the motor nerve via antagonistic inhibition of the AChR. Finally, functional analyses outlined decreased time to peak twitch and half relaxation times, indicating enhanced physiology of excitation contraction coupling of NMJs within innervated motor units.

bioengineering

Bioengineered human skeletal muscle with a Pax7+ satellite cell niche capable of functional regeneration

Skeletal muscle (SkM) regenerates following injury, replacing damaged tissue with high fidelity. However, in serious injuries non-regenerative defects leave patients with loss of function, increased re-injury risk and often chronic pain. Progress in treating these non-regenerative defects has been slow, with advances only occurring where a comprehensive understanding of regeneration has been gained. Tissue engineering has allowed the development of bioengineered models of SkM which regenerate following injury to support research in regenerative physiology. To date however, no studies have utilised human myogenic precursor cells (hMPCs) to closely mimic human physiology due to difficulties generating sufficient cell numbers and the relatively low myogenic potential of hMPCs. Here we address problems associated with cell number and hMPC mitogenicity using magnetic association cell sorting (MACS), for the marker CD56, and media supplementation with fibroblast growth factor 2 (FGF-2) and B-27 supplement. Cell sorting allowed extended expansion of myogenic cells and supplementation was shown to improve myogenesis within engineered tissues and force generation at maturity. In addition, these engineered human SkM contained a Pax7+ niche and regenerated following Barium Chloride (BaCl2) injury. Following injury, reductions in function (87.5%) and myotube number (33.3%) were observed, followed by a proliferative phase with increased MyoD+ cells and a subsequent recovery of function and myotube number. An expansion of the Pax7+ cell population was observed across recovery suggesting an ability to generate Pax7+ cells within the tissue, similar to the self-renewal of satellite cells seen in vivo. This work outlines an engineered human SkM capable of functional regeneration following injury, built upon an open source system adding to the pre-clinical testing toolbox to improve the understanding of basic regenerative physiology.

cell biology