Long-Term Effects of Acute Stress on the Prefrontal-Limbic System in the Healthy Adult
Yu Li +6 more
openalex +1 more source
TRPA1+αCGRP+ sensory neurons in the nodose ganglion detect external insults such as lipopolysaccharide (LPS) and interact directly with pulmonary neuroendocrine cells (PNECs), promoting their activation and proliferation. This neural‐epithelial interaction amplifies lung inflammation.
Jie Chen +16 more
wiley +1 more source
Tracts in the limbic system show microstructural alterations post COVID-19 recovery. [PDF]
Mishra SS +5 more
europepmc +1 more source
Computational modeling of the brain limbic system and its application in control engineering
Danial Shahmirzadi
openalex +1 more source
A Practical Prenatal Ultrasound Classification System for Lower Limb Anomalies—PRELLIM Classification [PDF]
Arda Arduç +6 more
openalex +1 more source
Tendon Organoids Enable Functional Tendon Rejuvenation Through ALKBH5‐Dependent RNA Demethylation
FT organoids reverse the aged phenotype of tendon cells, reinstating a fetal‐like state. This breakthrough establishes a potent cell source for tendon tissue engineering, effectively advancing regenerative medicine. ABSTRACT Adult tendon injuries pose a major clinical challenge due to limited self‐repair capacity, resulting in suboptimal regeneration ...
Tian Qin +14 more
wiley +1 more source
Association of concussion history with psychiatric symptoms, limbic system structure, and kynurenine pathway metabolites in healthy, collegiate-aged athletes. [PDF]
Meier TB +8 more
europepmc +1 more source
Nurr1 Orchestrates Claustrum Development and Functionality
Nurr1 (Nr4a2) is the master transcription factor to control claustrum morphogenesis and cell fate decision postmitotically by inhibiting intracellular G‐protein signaling. Nurr1 deficiency alters the transcriptomic profiles of subcortical claustral neurons into neocortical insular neurons, resulting in defected claustrum development, impaired axonal ...
Kuo Yan +12 more
wiley +1 more source
Electrical Control of the Transduction Channels’ Gating Force in Mechanosensory Hair Cells
The inner ear's hair cells rely on mechanosensitive ion channels to convert vibrations of their hair‐bundle into electrical signals. We show that varying the electrical potential (U) across the sensory epithelium modulates a key determinant of mechanosensitivity—the gating force (FG)—by modulating the gating swing (d), ranging from the size of the ...
Achille Joliot +2 more
wiley +1 more source

