Intracellular Mechanosensation in Intestinal Smooth Muscle: Piezo1 Complexes Amplify Signaling Beyond the Surface
Bautista, G. M.; Manning, D.; Lieu, E. C.; Matsumoto, C.; Ugochukwu, S.; Tulman, J. P.; Aragon Baudel, M. M.; Rubio, N. D.; McElroy, S. J.; Baker, S.; Navedo, M. F.; Santana, L. F.
Show abstract
Mechanosensation is fundamentally viewed as a plasma membrane phenomenon. We challenge this paradigm by introducing intracellular mechanosensation in intestinal smooth muscle. We hypothesized that a distinct, organelle-based signaling axis exists to amplify mechanotransduction from the inside out. To test this, we investigated whether Piezo1, a canonical plasma membrane mechanosensor, also operates within the cell. Using tissue-level wire myography, high-resolution confocal microscopy, proximity ligation assays, and patch-clamp electrophysiology on freshly dissociated cells, we identified a functional intracellular signaling hub that starts at the sarcoplasmic reticulum (SR). Unlike surface transduction, this intracellular mechanism relies on a nanoscale multiprotein complex (<40 nm) comprising an SR sensor (intra-Piezo1) and an amplifier (Ryanodine Receptor, RyR), coupled with a PM effector (large-conductance, Ca2+-activated K+ channels, i.e., BKCa channels). Activating this intracellular complex generated massive BK-mediated outward currents independent of extracellular Ca{superscript 2} but strictly dependent on internal SR Ca{superscript 2} stores, confirming intrinsic organellar mechanotransduction. Within this complex, intra-Piezo1 and RyR are positioned to operate as a coupled SR Ca{superscript 2} release unit that activates BK channels at SR-PM junctions, driving potent membrane hyperpolarization that reduces smooth muscle contractility, revealing the intra-Piezo1 complex as a molecular brake on excitation. These findings demonstrate that mechanotransduction is not confined to the cell surface. Instead, a specialized Sensor-Amplifier-Effector complex originating at intracellular organelles amplifies cellular sensitivity to physical force, providing a critical gain-control system that restrains smooth muscle excitability and regulates GI motility. Key PointsO_LIIntracellular organelles contribute to mechanosensory signaling in GI smooth muscle cells, complementing plasma membrane mechanisms. C_LIO_LIIntra-Piezo1 form a nanoscale signaling complex (<40nm) on the sarcoplasmic reticulum (SR), linking the mechanosensor Piezo1 with RyR and large conductance, Ca2+-activated K+ channels. C_LIO_LIUnlike surface sensors, this intracellular complex functions via a "Sensor-Amplifier-Effector" mechanism in which intra-Piezo1 detects mechanical stress and triggers SR Ca2+ release, thereby activating a nearby RyR and large-conductance, Ca2+-activated K+ channel. C_LIO_LIEngaging this intracellular Piezo1-mediated axis significantly dampens smooth muscle contractility, identifying a critical gain-control system essential for regulating GI motility. C_LI
Matching journals
The top 3 journals account for 50% of the predicted probability mass.
Similar papers in this journal
Similar papers in this journal
Similar papers in this journal
- A silent Kv channel subunit shapes PV neuron action potential waveform and short-term synaptic plasticity during high-frequency firing 94%
- Bi-directional flow of the funny current (If) during the pacemaking cycle in murine sinoatrial node myocytes 93%
- Lateral entorhinal cortex afferents reconfigure the activity in piriform cortex circuits 93%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.