Intermediate conductance calcium-activated potassium channel (KCa3.1) in cancer: Emerging roles and therapeutic potentials

被引:0
|
作者
Van, Nhung Thi Hong [1 ,2 ]
Nam, Joo Hyun [1 ,2 ]
机构
[1] Dongguk Univ, Coll Med, Dept Physiol, Gyeongju 38066, South Korea
[2] Dongguk Univ, Coll Med, Channelopathy Res Ctr CRC, Goyang 10326, South Korea
关键词
KCa3.1; KCNN4; Cancer progression; Metastasis; Tumor microenvironment; Biomarker; Cancer therapeutic target; CA2+-ACTIVATED K+ CHANNEL; T-CELL-ACTIVATION; GARDOS CHANNEL; K(CA)3.1 CHANNELS; BREAST-CANCER; UP-REGULATION; IN-VITRO; TUMOR MICROENVIRONMENT; PROGNOSTIC BIOMARKER; CHLORIDE SECRETION;
D O I
10.1016/j.bcp.2024.116573
中图分类号
R9 [药学];
学科分类号
1007 ;
摘要
The KCa3.1 channel (also known as the KCNN4, IK1, or SK4 channel) is an intermediate-conductance calciumactivated potassium channel that regulates the membrane potential and maintains calcium homeostasis. Recently, KCa3.1 channels have attracted increasing attention because of their diverse roles in various types of cancers. In cancer cells, KCa3.1 channels regulate key processes, including cell proliferation, cell cycle, migration, invasion, tumor microenvironments, and therapy resistance. In addition, abnormal KCa3.1 expression in cancers is utilized to distinguish between tumor and normal tissues, classify cancer stages, and predict patient survival outcomes. This review comprehensively examines the current understanding of the contribution of KCa3.1 channels to tumor formation, metastasis, and its mechanisms. We evaluated the potential of KCa3.1 as a biomarker for cancer diagnosis and prognosis. Finally, we discuss the advances and challenges of applying KCa3.1 modulators in cancer treatment and propose approaches to overcome these obstacles. In summary, this review highlights the importance of this ion channel as a potent therapeutic target and prognostic biomarker of cancer.
引用
收藏
页数:16
相关论文
共 50 条
  • [41] Synthesis and biological evaluation of PET tracers designed for imaging of calcium activated potassium channel 3.1 (KCa3.1) channels in vivo
    Broemmel, Kathrin
    Konken, Christian Paul
    Boergel, Frederik
    Obeng-Darko, Henry
    Schelhaas, Sonja
    Bulk, Etmar
    Budde, Thomas
    Schwab, Albrecht
    Schaefers, Michael
    Wuensch, Bernhard
    RSC ADVANCES, 2021, 11 (48) : 30295 - 30304
  • [42] Exploring the binding site and mechanism of action of NS309, a superagonistic positive gating modulator for the calcium-activated potassium channel KCa3.1
    Nasburg, Joshua
    Wulff, Heike
    Shim, Heesung
    Dietrich, Connor
    BIOPHYSICAL JOURNAL, 2024, 123 (03) : 261A - 262A
  • [43] Novel spliced variants of the intermediate-conductance Ca2+-activated K+ channel, KCa3.1
    Ohya, Susumu
    Niwa, Satomi
    Yanagi, Ayano
    Nakamura, Erina
    Yamamura, Hisao
    Imaizumi, Yuji
    JOURNAL OF PHARMACOLOGICAL SCIENCES, 2009, 109 : 103P - 103P
  • [44] ROLE OF THE INTERMEDIATE-CONDUCTANCE Ca2+-ACTIVATED K+ CHANNEL, KCa3.1 SPLICED ISOFORM
    Ohya, Susumu
    Niwa, Satomi
    Yanagi, Ayano
    Nakamura, Erina
    Yamamura, Hisao
    Imaizumi, Yuji
    JOURNAL OF PHYSIOLOGICAL SCIENCES, 2009, 59 : 255 - 255
  • [45] Inhibition of Intermediate-Conductance Calcium-Activated K Channel (KCa3.1) and Fibroblast Mitogenesis by α-Linolenic Acid and Alterations of Channel Expression in the Lysosomal Storage Disorders, Fabry Disease, and Niemann Pick C
    Olivan-Viguera, Aida
    Lozano-Gerona, Javier
    Lopez de Frutos, Laura
    Cebolla, Jorge J.
    Irun, Pilar
    Abarca-Lachen, Edgar
    Garcia-Malinis, Ana J.
    Garcia-Otin, Angel Luis
    Gilaberte, Yolanda
    Giraldo, Pilar
    Kohler, Ralf
    FRONTIERS IN PHYSIOLOGY, 2017, 8
  • [46] The Potassium Channel KCa3.1 as New Therapeutic Target for the Prevention of Obliterative Airway Disease
    Hua, Xiaoqin
    Deuse, Tobias
    Chen, Yi-Je
    Wulff, Heike
    Stubbendorff, Mandy
    Koehler, Ralf
    Miura, Hiroto
    Laenger, Florian
    Reichenspurner, Hermann
    Robbins, Robert C.
    Schrepfer, Sonja
    TRANSPLANTATION, 2013, 95 (02) : 285 - 292
  • [47] Peptide Lv promotes angiogenesis through intermediate conductance calcium-dependent potassium (KCa3.1) channels in endothelial cells
    Pham, Dylan
    Niemi, Autumn
    Ko, Gladys Y. P.
    INVESTIGATIVE OPHTHALMOLOGY & VISUAL SCIENCE, 2022, 63 (07)
  • [48] Imaging of the calcium activated potassium channel 3.1 (KCa3.1) in vivo using a senicapoc-derived positron emission tomography tracer
    Konken, Christian P.
    Hessling, Kathrin
    Thale, Insa
    Schelhaas, Sonja
    Dabel, Jennifer
    Maskri, Sarah
    Bulk, Etmar
    Budde, Thomas
    Koch, Oliver
    Schwab, Albrecht
    Schaefers, Michael
    Wuensch, Bernhard
    ARCHIV DER PHARMAZIE, 2022, 355 (12)
  • [49] AN INTERMEDIATE CONDUCTANCE CALCIUM-ACTIVATED POTASSIUM CHANNEL IN RAT VISCERAL SENSORY AFFERENT NEURONS
    HAY, M
    KUNZE, DL
    NEUROSCIENCE LETTERS, 1994, 167 (1-2) : 179 - 182
  • [50] Evidence in favour of an intermediate-conductance calcium-activated potassium channel in cortical astrocytes
    Longden, T.
    Edwards, G.
    Draheim, H.
    Hengerer, B.
    FUNDAMENTAL & CLINICAL PHARMACOLOGY, 2008, 22 : 9 - 9