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Chu, Y.-C.

Publications and source records attributed to Chu, Y.-C..

2 recordsLinked to original sources

Episodic Transport of Protein Aggregates Achieves a Positive Size Selectivity in Aggresome Formation

Eukaryotic cells direct toxic misfolded proteins to various protein quality control pathways based on their chemical features and aggregation status. Aggregated proteins are targeted to selective autophagy or specifically sequestered into the "aggresome," a perinuclear inclusion at the microtubule-organizing center (MTOC). However, the mechanism for selectively sequestering protein aggregates into the aggresome remains unclear. To investigate aggresome formation, we reconstituted MTOC-directed aggregate transport in Xenopus laevis egg extract using AgDD, a chemically inducible aggregation system. High-resolution single-particle tracking revealed that dynein-mediated transport of aggregates was highly episodic, with average velocity positively correlated with aggregate size. Our mechanistic model suggests that the recurrent formation of the dynein transport complex biases larger aggregates towards the active transport state, compensating for the slowdown due to viscosity. Both episodic transport and positive size selectivity are specifically associated with aggresome-dynein adaptors. Coupling conventional dynein-activating adaptors to the aggregates perturbs aggresome formation and reverses size selectivity.

cell biology↗

Enhancing glymphatic function with very low-intensity ultrasound via the transient receptor potential vanilloid-4-aquaporin-4 pathway

Recently, the glymphatic system has been proposed as a mechanism for waste clearance from the brain parenchyma. Glymphatic dysfunction has been associated with several neurological diseases such as Alzheimers disease, traumatic brain injury, and stroke. Therefore, it may be an important target for therapeutic interventions. In this study, we demonstrated that very low intensity ultrasound (VLIUS) (center frequency = 1 MHz; pulse repetition frequency = 1 kHz; duty factor = 1%, and spatial peak temporal average intensity [Ispta] = 3.68 mW/cm2; duration = 5 min) could significantly enhance the influx of cerebrospinal fluid tracers into the perivascular spaces of the brain and also facilitate interstitial substance clearance from the brain parenchyma. Notably, no evidence of brain damage was observed after VLIUS stimulation. We also demonstrated that VLIUS enhanced the glymphatic influx via the transient receptor potential vanilloid-4-aquaporin-4 pathway in the astrocytes. This mechanism may provide insights into VLIUS-regulated glymphatic function that modifies the natural course of central nervous system disorders related to waste clearance dysfunction. One Sentence SummaryVery low-intensity ultrasound enhances glymphatic influx via the TRPV4-AQP4 pathway in the astrocytes, without observable brain damage.

neuroscience↗