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300-330 / 1000+ resultsresearch Potassium channel conductance as a control mechanism in hair follicles
research Potassium Channel Openers Stimulate DNA Synthesis in Mouse Epidermal Keratinocyte and Whole Hair Follicle Cultures
Potassium channel openers can boost hair growth by stimulating DNA in hair follicles.
research Potassium Channel Conductance as a Control Mechanism in Hair Follicles.
research Potassium Channel Openers Increase Aortic Elastic Fiber Formation and Reverse the Genetically Determined Elastin Deficit in the BN Rat
Potassium channel openers help form elastic fibers in arteries and can treat elastin deficiency and hypertension.
research KCNQ Potassium Channels Modulate Sensitivity of Skin Down-hair (D-hair) Mechanoreceptors
KCNQ potassium channels help control the sensitivity of touch receptors in the skin.
research Effect of minoxidil sulfate and pinacidil on single potassium channel current in cultured human outer root sheath cells and dermal papilla cells
Minoxidil sulfate and pinacidil may promote hair growth through increased blood flow, not by activating potassium channels.
research Influence of the alkylsulfonylamino substituent located at the 6-position of 2,2-dimethylchromans structurally related to cromakalim: From potassium channel openers to calcium entry blockers?
New compounds similar to cromakalim were less effective at inhibiting insulin release but improved in solubility and one acted as a calcium entry blocker, not a potassium channel opener.
research Targeting Solid Tumours With Potassium Channel Activators. A Return to Fundamentals?
Potassium channel activators like nicotinamide and minoxidil might help treat solid tumors.
research Effects of Potassium Channel Modulators on the Responses of Mammalian Slowly Adapting Mechanoreceptors
Potassium channel modulators mostly increase the activity of rat whisker mechanoreceptors.
research Novel and established potassium channel openers stimulate hair growth in vitromodes of action in hair follicles.: implications for their
Potassium channel openers like minoxidil boost hair growth.
research Potassium channels: new targets for drug treatment.
Potassium channels are important drug targets for treating conditions like hypertension, hair loss, and diabetes.
research Human hair follicles contain two forms of ATP‐ sensitive potassium channels, only one of which is sensitive to minoxidil
One minoxidil-sensitive potassium channel exists in human hair follicles.
research Blocking Potassium Channels (Kv1.3): A New Treatment Option for Alopecia Areata?
Kv1.3 blockers may help treat alopecia areata and promote hair regrowth.
research A Study of the Expression of Small Conductance Calcium-Activated Potassium Channels (SK1-3) in Sensory Endings of Muscle Spindles and Lanceolate Endings of Hair Follicles in the Rat
SK2 channels help control sensory signals in rat muscle spindles and hair follicles.
research The Emerging Structural Pharmacology of ATP-Sensitive Potassium Channels
KATP channels are important for energy balance and are targeted by drugs for diabetes, hypoglycemia, hypertension, and hair loss.
research Investigations into the roles of potassium channels in hair growth : studies confirming the presence of several ATP-sensitive potassium (K+ATP) channels in hair follicles and exploring their mechanism of action using molecular biological, cell culture, organ culture and proteomic approaches
KATP channels are crucial for hair growth, and targeting them may lead to new hair loss treatments.
research Pharmacological evidence for the involvement of adenosine triphosphate sensitive potassium channels in chloroquine-induced itch in mice
ATP-sensitive potassium channels play a role in chloroquine-induced itch in mice.
research 507 Trial to investigate the role of ATP-sensitive potassium channels (KATPc) in dermal papilla cells (DPCs)
ATP-sensitive potassium channels are important for hair growth.
research The Role of ATP-Sensitive Inward Rectifier Potassium Channels In The Regulation of Reactive Oxygen Species In The Western Honey Bee, APIS Mellifera L.
Activating certain potassium channels in honey bees can lower antioxidant levels and reduce death rates during heavy mite infestations, potentially aiding their immune response.
research The Opening of Potassium Channels: A Mechanism for Hair Growth
research Faculty Opinions recommendation of The Venus flytrap trigger hair-specific potassium channel KDM1 can reestablish the K+ gradient required for hapto-electric signaling.
The KDM1 gene helps Venus flytraps close by managing potassium ions.
research Repurposing Kir6/SUR2 Channel Activator Minoxidil to Arrests Growth of Gynecologic Cancers
Minoxidil can stop the growth of ovarian cancer cells without harming the heart.
research Minoxidil suppressed mitochondrial depolarization and subsequent neuronal cell death by decreasing intracellular potassium level
Minoxidil may protect the brain from damage by preventing cell death and energy loss.
research Immunohistochemical, pharmacovigilance, and omics analyses reveal the involvement of ATP-sensitive K+ channel subunits in cancers: role in drug–disease interactions
ATP-sensitive K+ channel subunits, particularly Sur2A, play a significant role in various cancers.
research The Possible Involvement of KATP Channels in Cholestatic Pruritus in Mice
KATP channels may help reduce itching in liver disease.
research Effects of steroid hormones on the expression of Ca2+ activated K+ channels in in vitro pituitary cells of Atlantic cod (Gadus morhua)
Steroid hormones may affect sexual maturation in cod by altering certain KCa channel expressions.
research Minoxidil: mechanisms of action on hair growth
Minoxidil boosts hair growth by opening potassium channels and increasing cell activity.
research Minoxidil Use in Dermatology, Side Effects and Recent Patents
Minoxidil treats hair loss, promotes growth, has side effects, and has recent patents.
research Alopecia areata: Animal models illuminate autoimmune pathogenesis and novel immunotherapeutic strategies
Animal models have helped understand hair loss from alopecia areata and find new treatments.