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Biology subjects

Betsch, M.

Publications and source records attributed to Betsch, M..

2 recordsLinked to original sources

The Human Rectus Femoris Muscle Receives an Independent Common Synaptic Input During Isometric Leg Extensions

The distribution of common synaptic inputs across spinal motor neuron pools within and across synergist muscles reveals direct insight in the neural control of movement. We previously documented two dominant common inputs in the human vastus lateralis (VL) and medialis (VM) muscle during isometric leg extensions. Whether these inputs are also shared with rectus femoris (RF), a synergist muscle that contributes substantially to leg extension but is biarticular, remains unknown. We simultaneously recorded motor unit activity from VM, RF, and VL using multiple targeted intramuscular electromyographic sensors during isometric knee extension. Decomposed motor unit spike trains were analyzed using discharge characteristics, pairwise correlation, spectral coherence, explained variance, and factor analysis to characterize the structure of common synaptic input within and across muscles. Despite their shared mechanical output via a common patellar tendon, the three muscles exhibited distinct patterns of neural organization. RF consistently received a strong, low-dimensional common input that was largely independent of the drive to VM and VL, as evidenced by elevated within-muscle correlation and coherence, low between-muscle coupling, and an invariant dedicated latent factor across all participants. VM and VL shared a substantial proportion of common synaptic input, but the degree of coupling and the underlying factor structure varied across individuals, ranging from a single shared factor to largely independent muscle-specific inputs. These findings indicate that the quadriceps are organized in a muscle- and subject-specific manner, with RF receiving a dedicated independent input.

neuroscience↗

Tuning the mechanical properties of polymer-based surrogate materials for articular cartilage and vocal fold repair

The macroscopic biomechanical characteristics of soft and ultrasoft tissues, such as articular cartilage and vocal folds, significantly determine their physiological function. Treatments of widespread tissue degradations due to osteoarthritis in the knee or vocal fold impairment remain an unresolved challenge. For the design of implants for tissue repair after injury or disease, it is key to thoroughly understand the unique biomechanical properties of native tissues and potential substitute materials. We use multimodal mechanical testing methods combined with hyperelastic nonlinear continuum mechanics modeling, and finite element simulations to determine the macroscopic behavior of surrogate materials for human articular cartilage in the knee and human vocal folds. Our cyclic loading experiments reveal qualitative similarities for both tissues and their surrogates, including a nonlinear stress-strain behavior, hysteresis, and conditioning. We demonstrate the tunability of biomimetic and biosimilar stiffnesses of synthetic articular cartilage and vocal fold surrogates through tissue-specific process-material combinations. Our results demonstrate the feasibility of synthetic metamaterials in replicating essential passive biomechanical functions with great potential for future treatment options.

bioengineering↗