Chloride intracellular channels (CLICs) are a family of proteins that exist in soluble and transmembrane forms. The newest discovered member of the family CLIC6 is implicated in breast, ovarian, lung gastric, and pancreatic cancers, and is also known to interact with dopamine-(D(2)-like) receptors. The soluble structure of the channel has been resolved but the exact physiological role of CLIC6, biophysical characterization, and the membrane structure remains unknown. Here we aimed to characterize the biophysical properties of this channel using a patch-clamp approach.
Chloride is a key anion involved in cellular physiology by regulating its homeostasis and rheostatic processes. Changes in cellular Cl- concentration result in differential regulation of cellular functions such as transcription and translation, post-translation modifications, cell cycle and proliferation, cell volume, and pH levels. In intracellular compartments, Cl- modulates the function of lysosomes, mitochondria, endosomes, phagosomes, the nucleus, and the endoplasmic reticulum. In extracellular fluid (ECF), Cl- is present in blood/plasma and interstitial fluid compartments. A reduction in Cl- levels in ECF can result in cell volume contraction. Cl- is the key physiological anion and is a principal compensatory ion for the movement of the major cations such as Na+, K+, and Ca2+. Over the past 25 years, we have increased our understanding of cellular signaling mediated by Cl-, which has helped in understanding the molecular and metabolic changes observed in pathologies with altered Cl- levels. Here, we review the concentration of Cl- in various organs and cellular compartments, ion channels responsible for its transportation, and recent information on its physiological roles.
Spermatogenesis is the production process of spermatozoa. During spermatogenesis, the basal cells lose cytoplasm volume until form a mature spermatozoon. The homeostasis volume regulation mechanism during spermatogenesis remains unknown. Chloride channels are predicted to be involved in the osmoregulation of different cell types including spermatozoa. Biochemical evidence implicates a novel class of chloride channels (chloride intracellular channels (CLICs)) in spermatogenesis. CLICs are dimorphic anion channels that exist in soluble and membrane forms.
Chloride intracellular ion channels (CLICs) are a unique class of metamorphic proteins that exists as soluble proteins and can auto-insert into the membrane to form an ion channel. The soluble structure of all the CLICs is well established but the structural information on the membrane form is lacking. CLICs are known to have a single putative transmembrane (PTM) region and proteins oligomerize to a tetramer to form a functional channel. CLIC1 is a sensor of oxidative stress, overexpressed in different types of cancer, and involved in diabetes, cell viability, and angiogenesis. The PTM region of CLIC1 encompasses residue 24-46, where cysteine at position 24 is a critical redox-sensitive residue. However, the precise arrangement of the residues in the pore region is not known. Hence, to identify the key residue involved in the gating mechanism and ion selectivity, the putative residues lining the pore region were mutated using site-directed mutagenesis. We incorporated the substituted cysteine accessibility method (SCAM) and recorded the channel activity of the mutants in the whole-cell and inside-out configurations. The ion selectivity was measured by perfusing with different anions (chloride, bromide, fluoride, and phosphate). The open channel probability (Po) is significantly higher in R29C mutant (0.88) compared to WT (0.21), suggesting R29C residue is involved in CLIC1 gating. Similarly, the CLIC1 is highly selective for chloride ions as compared to other anions, and the selective filer is located between V33C and K37C residues. We probed substituted cysteine residues with cadmium and identified that the T40C showed a reduction in Po and amplitude. Our results have delineated the pore lining of the CLIC1 and identified the residues involved in its gating and regulating the chloride selectivity.
Chloride intracellular channels (CLICs) are a family of proteins that can adopt soluble and transmembrane forms. The newly discovered member of the family CLIC6 is involved in several human cancers. The soluble structure of the channel has been resolved but the exact function of CLIC6 and the membrane structure remains unknown. Here we aimed to characterize the biophysical properties of this channel with a patch-clamp approach. To characterize the biophysical properties of CLIC6, we expressed CLIC6 in HEK293 cells. We established the biophysical properties of CLIC6 by using whole-cell and cell-attached configurations. By using various anion solutions, we also determined that CLIC6 is more permeable to chloride (Cl) as compared to bromide (Br), fluoride (F), and potassium (K) ions. In the whole-cell configuration, the CLIC6 currents were inhibited (48.4%) after the addition of 10 µM of IAA-94 (CLIC-specific blocker). Using qRT-PCR, we identified that CLIC6 is most abundant in lung and brain cells. High-resolution microscopy revealed that CLIC6 localizes to the plasma membrane on ectopic expression. Overall, we have determined the biophysical properties of CLIC6 and established it as a Cl channel.
Chloride intracellular channels (CLICs) are a family of proteins that exist in soluble and transmembrane forms. The newest discovered member of the family CLIC6 is implicated in breast, ovarian, lung gastric, and pancreatic cancers and is also known to interact with dopamine-(D(2)-like) receptors. The soluble structure of the channel has been resolved, but the exact physiological role of CLIC6, biophysical characterization, and the membrane structure remain unknown. Here, we aimed to characterize the biophysical properties of this channel using a patch-clamp approach. To determine the biophysical properties of CLIC6, we expressed CLIC6 in HEK-293 cells. On ectopic expression, CLIC6 localizes to the plasma membrane of HEK-293 cells. We established the biophysical properties of CLIC6 by using electrophysiological approaches. Using various anions and potassium (K+) solutions, we determined that CLIC6 is more permeable to chloride-(Cl-) as compared to bromide-(Br-), fluoride-(F-), and K+ ions. In the whole-cell configuration, the CLIC6 currents were inhibited after the addition of 10 mu M of IAA-94 (CLIC-specific blocker). CLIC6 was also found to be regulated by pH and redox potential. We demonstrate that the histidine residue at 648 (H648) in the C terminus and cysteine residue in the N terminus (C487) are directly involved in the pH-induced conformational change and redox regulation of CLIC6, respectively. Using qRT-PCR, we identified that CLIC6 is most abundant in the lung and brain, and we recorded the CLIC6 current in mouse lung epithelial cells. Overall, we have determined the biophysical properties of CLIC6 and established it as a Cl- channel.
Sea urchin sperm swimming is regulated by speract, a decapeptide released from egg jelly that induces chemotaxis and triggers membrane potential (Em) changes, intracellular increases in cyclic nucleotides (cGMP, cAMP), pH (pHi) and calcium concentration ([Ca2+]i). The identity of the ionic transporters associated with the [Ca2+]i changes required for chemotaxis is not fully known. CatSper, a sperm exclusive Ca2+ channel has been detected by proteomic analysis and immunofluorescence in sea urchin sperm and there is evidence for its involvement in chemotaxis. This work presents an electrophysiological characterization of a CatSper channel in sea urchin sperm. By swelling sperm suspending them in 10-fold diluted artificial sea water (ASW) we achieve on-cell patch-clamp recordings that document a mildly voltage and pHi dependent Na+ permeable channel (in absence of divalent ions in the pipette), sensitive to speract, and blocked by Mibefradil (Mibe), NNC55-0396 (NNC) and RU1968 (RU) resembling CatSper. We also recorded a voltage dependent Cl- channel inhibited by Niflumic Acid and the TMEM16A blocker.