Search bioRxiv⌕ Search

Biology subjects

Iwai, R.

Publications and source records attributed to Iwai, R..

4 recordsLinked to original sources

Scaffold-free cryopreservable cartilage grafts obtained from hiPSC-derived chondroprogenitor cells for airway reconstruction with growth adaptability

Pediatric tracheal reconstruction remains a major clinical challenge because of limited graft availability and the need for growth-adaptive materials. Current approaches, such as costal cartilage grafting and use of scaffold-based constructs, often suffer from complications including graft resorption, donor site morbidity, and poor integration. Here, we present scaffold-free cartilage grafts (chondro-plates) derived from expandable limb-bud mesenchymal cells generated from human leukocyte antigen-homozygous human induced pluripotent stem cells. These grafts are cryopreservable and maintain their hyaline cartilage phenotype after a brief pre-culture. In both rat and rabbit tracheal defect models, chondro-plates supported robust cartilage regeneration, epithelial reconstitution, and neovascularization. Importantly, in a pediatric-like growing rat model, chondro-plates preserved luminal patency and structural integrity, outperforming autologous costal cartilage. This study demonstrates a clinically viable, off-the-shelf strategy for tracheal reconstruction using scalable, immunocompatible, and growth-adaptive cartilage grafts.

bioengineering↗

Volitional stopping is preceded by a transient beta oscillation

Human motor cortex EEG beta (15-30 Hz) oscillations undergo transient power modulations (bursts) during volitional control of movements. They are a potential control signal for brain-machine interfaces and are a therapeutic target in Parkinsons disease. The prevailing view is that EEG beta bursts increase during stopping and immobility, but do not precede stopping. In contrast to prior work in humans and animals that used a latent and unobservable stopping time in the stop-signal task, we developed a translational animal model to align EEG with overt action stopping. We recorded 32-electrode EEG along with the angular velocity of a treadmill while head-fixed rats stopped in-progress running on a freely-rotating, non-motorized treadmill. Contrasting prior work, motor cortex beta bursts increased before stopping and not during stopping or immobility. Using information theoretic measures, we show that beta power was informative about treadmill velocity 200 msec in the future, but only during planning to stop. By introducing artificial temporal jitter to mimic the estimation of stopping time used in prior work, we show that this predictive brain-action relationship fails with even small jitter. Finally, we use a variety of machine learning methods to show that, despite EEG beta oscillations being a clear neural correlate preceding stopping, it has limited utility for real-time action decoding. Our work suggests a new conceptual model for neural control of action stopping.

neuroscience↗

Large MAF Transcription Factors Reawaken Evolutionarily Dormant Fast-Glycolytic Type IIb Myofibers in Human Skeletal Muscle

Small mammals rely on type IIb myofibers, expressing the fastest myosin IIb (encoded by MYH4), for rapid muscle contraction. In contrast, larger mammals, including humans, show reduced or absent MYH4 expression and type IIb myofibers, favoring slower-contracting myofibers. The evolutionary mechanisms underlying this shift remain unclear. Here, we identify large MAF transcription factors (MAFA, MAFB, MAF) as key regulators of MYH4 expression in large mammals, including human and bovine. Overexpression of large MAFs induces MYH4 expression and enhances glycolytic capacity in human myotubes, supported by RNA-seq and metabolic flux analyses. RNA-seq of human muscle biopsies reveals a positive correlation between MAFA, MAF, and MYH4 expression, with these genes elevated in power-trained individuals. These findings reveal a conserved mechanism across mammals, showing that large MAFs can induce type IIb myofibers even in humans, with potential applications for enhancing athletic performance and addressing age-related muscle weakness associated with the loss of fast-twitch myofibers.

cell biology↗

Aberrant prefrontal activity and arousal level correlate with action initiation and response vigor

Orchestrating learned Stimulus-Response (S-R) mappings has been suggested as one of the central functions of the prefrontal cortex (PFC). While S-R selective activity has been demonstrated, it remains unclear whether the strength of such activity is related to the vigor of the subsequent response. Here, we trained male rats to perform a Go/NoGo response task while head-fixed on a treadmill. This allowed us to record PFC (cingulate, area 24) single unit spiking, as well as running speed as a proxy for response vigor. We show that aberrant activation of the "wrong" S-R mapping is correlated with initiation of the incorrect response. The vigor of the incorrect response was directly related to the strength of the aberrant stimulus-evoked activity. A similar relationship was observed for pre-trial arousal state and response vigor. Our findings confirm the long-standing concept, established in psychology and cognitive neuroscience, that S-R mappings are directly related to response vigor. Moreover, we provide evidence for the often suggested but rarely tested relationship between arousal and response vigor and a potential underlying neuronal mechanism involving neuromodulation of S-R mapping activity. Significance statementThe concept of stimulus-response (S-R) mappings is fundamental in psychology and has been widely documented as a key function of the prefrontal cortex. Here, the authors directly link prefrontal single neuron mapping-selective activity to the vigor of responses. Moreover, they link a physiological measure of arousal to response vigor and suggest that neuromodulatory systems invigorate responses by potentially modulating PFC S-R mapping-selective activity.

neuroscience↗