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Telangiectasia macularis multiplex acquisita is an acquired cutaneous telangiectasis of unknown aetiology, and it lacks both effective and cost-efficient treatment. This study aims to identify a novel potential associated factor of the disease and explore feasible therapeutic interventions. In this retrospective case series study, 46 Chinese patients diagnosed with telangiectasia macularis multiplex acquisita between 1 January 2007 and 18 May 2023 were included. The median age of onset was 43 years (23 to 60 years), and the male to female ratio was 10.5:1. Besides previously reported associations including chronic liver disorders, alcohol consumption, and smoking, a potential association was found between use of calcium channel blockers and development of telangiectasia macularis multiplex acquisita. Twenty-two of 27 hypertensive patients took calcium channel blockers, with 17 followed up. Ten out of 17 displayed a range of improvements following the cessation of calcium channel blockers; 1 patient reported no lesion change post-discontinuation of calcium channel blockers; 1 patient continued their medication but showed partial improvement after 2 pulsed dye laser treatments; 1 patient observed lesion colour lightening without altering hypertensive medication or other specific treatments; and another 4 kept their previous hypertensive regimen due to blood pressure stability concerns, with no change in their lesions. The study proposes that cessation of calcium channel blockers can be a novel therapeutic approach for affected individuals.
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http://dx.doi.org/10.2340/actadv.v104.40447 | DOI Listing |
PLoS One
September 2025
Department of Urology, Kanazawa Medical University, Kahoku, Ishikawa, Japan.
Calcium oxalate (CaOx) stones are prevalent in urinary tract stone disease. While their formation can be induced in rats by administering ethylene glycol and vitamin D, the initial nucleation and formation processes are unclear. Here, we aimed to determine where CaOx crystals initially form, examine the associated histological and morphological changes, and clarify the genes whose expression varies at those sites and their function.
View Article and Find Full Text PDFMol Biol Rep
September 2025
Chitkara College of Pharmacy, Chitkara University, Rajpura, 140401, Punjab, India.
Neuroinflammation, a vital protective response for tissue homeostasis, becomes a detrimental force when chronic and dysregulated, driving neurological disorders like Alzheimer's, Parkinson's, and Huntington's diseases. Potassium (K) channels maintain membrane potential and cellular excitability in neurons and glia within the intricate CNS signaling network. Neuronal injury or inflammation can disrupt K channel activity, leading to hyperexcitability and chronic pain.
View Article and Find Full Text PDFAdv Mater
September 2025
State Key Laboratory of Crystal Materials, Shandong University, Jinan, Shandong, 250100, P. R. China.
Electrical deep brain stimulation is effective for epilepsy suppression, but will lead to neural tissue damage and inflammation due to implantation of electrodes and a pulse generator. Transcranial magnetic and transcranial ultrasound stimulation cannot directly generate effective electrical signals in deep brain regions. Here, the use of piezoelectric nanoparticles is proposed as wireless nanostimulators for deep brain electrical stimulation and minimally invasive suppression of epilepsy.
View Article and Find Full Text PDFClin Exp Nephrol
September 2025
Department of Medical Science and Cardiorenal Medicine, Yokohama City University Graduate School of Medicine, Yokohama, Japan.
Background: Sacubitril/valsartan is typically prescribed for patients with heart failure and hypertension. We previously reported that sacubitril/valsartan provides comparable blood pressure (BP) reduction and superior tolerability compared to thiazide diuretics. This post hoc study aimed to compare the effects of sacubitril/valsartan and thiazide diuretics in patients with chronic kidney disease (CKD).
View Article and Find Full Text PDFElife
September 2025
Department of Chemistry, University of Massachusetts, Amherst, United States.
Voltage-dependence gating of ion channels underlies numerous physiological and pathophysiological processes, and disruption of normal voltage gating is the cause of many channelopathies. Here, long timescale atomistic simulations were performed to directly probe voltage-induced gating transitions of the big potassium (BK) channels, where the voltage sensor domain (VSD) movement has been suggested to be distinct from that of canonical Kv channels but remains poorly understood. Using a Core-MT construct without the gating ring, multiple voltage activation transitions were observed at 750 mV, allowing detailed analysis of the activated state of BK VSD and key mechanistic features.
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