Short transient receptor potential channel: Difference between revisions
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Overall, these structural insights | Overall, these structural insights | ||
== Function == 1.TRCP1 helps the cell to fill up for SERCA2 deficiency so that the cell can survive by letting more calcium enter the endoplasmic reticulum. This activates survival pathways, such as NF-kB, reduces cell death, and promotes cell growth.<ref>Pani, B., Cornatzer, E. et al. (2006). Up-Regulation of Transient Receptor Potential Canonical 1 (TRPC1) following Sarco(endo)plasmic Reticulum Ca²⁺ ATPase 2 Gene Silencing Promotes Cell Survival: A Potential Role for TRPC1 in Darier's Disease. ''Molecular Biology of the Cell'', 17(10):4446–4458.</ref> | == Function == | ||
1.'''TRCP1''' helps the cell to fill up for SERCA2 deficiency so that the cell can survive by letting more calcium enter the endoplasmic reticulum. This activates survival pathways, such as NF-kB, reduces cell death, and promotes cell growth.<ref>Pani, B., Cornatzer, E. et al. (2006). Up-Regulation of Transient Receptor Potential Canonical 1 (TRPC1) following Sarco(endo)plasmic Reticulum Ca²⁺ ATPase 2 Gene Silencing Promotes Cell Survival: A Potential Role for TRPC1 in Darier's Disease. ''Molecular Biology of the Cell'', 17(10):4446–4458.</ref> | |||
2) when TRPC1 joins TRPC4 channel (1 TRPC1 and TRPC4) it pushes away Ca²⁺ as TRPC1 has an aminio acid(K639) which is positively charged pushing the positively charged calcium. It also develops more preference for Na⁺/K⁺ over Ca²⁺, while increasing inhibitor sensitivity.<ref>Won, J., Kim, J., Kim, J. et al. (2025). Cryo-EM structure of the heteromeric TRPC1/TRPC4 channel. ''Nature Structural & Molecular Biology'', 32(2):326–338. DOI: 10.1038/s41594-024-01408-1</ref> | 2) when TRPC1 joins TRPC4 channel (1 TRPC1 and TRPC4) it pushes away Ca²⁺ as TRPC1 has an aminio acid(K639) which is positively charged pushing the positively charged calcium. It also develops more preference for Na⁺/K⁺ over Ca²⁺, while increasing inhibitor sensitivity.<ref>Won, J., Kim, J., Kim, J. et al. (2025). Cryo-EM structure of the heteromeric TRPC1/TRPC4 channel. ''Nature Structural & Molecular Biology'', 32(2):326–338. DOI: 10.1038/s41594-024-01408-1</ref> | ||
3. TRPC4 is essential during early postnatal brain development, as it helps dendrites grow and stay stable by turning glutamate signals into calcium entry, activating a force-generating pathway. Without TRPC4, dendrites will disintegrate.<ref>Jeon, J., Moore, T. I., Sob, I. et al. (2025). TRPC4 regulates limbic behavior and neuronal development by stabilizing dendrite branches through actomyosin-driven integrin activation. ''PNAS'', 122(33):e2511037ca122.</ref> | 3. '''TRPC4''' is essential during early postnatal brain development, as it helps dendrites grow and stay stable by turning glutamate signals into calcium entry, activating a force-generating pathway. Without TRPC4, dendrites will disintegrate.<ref>Jeon, J., Moore, T. I., Sob, I. et al. (2025). TRPC4 regulates limbic behavior and neuronal development by stabilizing dendrite branches through actomyosin-driven integrin activation. ''PNAS'', 122(33):e2511037ca122.</ref> | ||
== Disease == 1. Darier's disease, which is a genetic disorder, is caused by a mutation in SERCA2, the pump that stores calcium inside the endoplasmic reticulum. This inhibits Calcium flow inside, causing upregulation of TRPC1 to allow more calcium to enter. However, this activates NF-kB survival pathway, resists cell death, and pushes them towards overgrowth or abnormal keratinization.<ref>Pani, B., Cornatzer, E. et al. (2006). Up-Regulation of Transient Receptor Potential Canonical 1 (TRPC1) following Sarco(endo)plasmic Reticulum Ca²⁺ ATPase 2 Gene Silencing Promotes Cell Survival: A Potential Role for TRPC1 in Darier's Disease. ''Molecular Biology of the Cell'', 17(10):4446–4458.</ref> | == Disease == | ||
1. Darier's disease, which is a genetic disorder, is caused by a mutation in SERCA2, the pump that stores calcium inside the endoplasmic reticulum. This inhibits Calcium flow inside, causing upregulation of TRPC1 to allow more calcium to enter. However, this activates NF-kB survival pathway, resists cell death, and pushes them towards overgrowth or abnormal keratinization.<ref>Pani, B., Cornatzer, E. et al. (2006). Up-Regulation of Transient Receptor Potential Canonical 1 (TRPC1) following Sarco(endo)plasmic Reticulum Ca²⁺ ATPase 2 Gene Silencing Promotes Cell Survival: A Potential Role for TRPC1 in Darier's Disease. ''Molecular Biology of the Cell'', 17(10):4446–4458.</ref> | |||
2. TRPC4 helps stabilize the dendritic branches. Without TRPC4, brain circuits form incorrectly and cause neurodevelopmental effects.<ref>Jeon, J., Moore, T. I., Sob, I. et al. (2025). TRPC4 regulates limbic behavior and neuronal development by stabilizing dendrite branches through actomyosin-driven integrin activation. ''PNAS'', 122(33):e2511037122.</ref> | 2. TRPC4 helps stabilize the dendritic branches. Without TRPC4, brain circuits form incorrectly and cause neurodevelopmental effects.<ref>Jeon, J., Moore, T. I., Sob, I. et al. (2025). TRPC4 regulates limbic behavior and neuronal development by stabilizing dendrite branches through actomyosin-driven integrin activation. ''PNAS'', 122(33):e2511037122.</ref> | ||
== Relevance ==1. The asymmetric structure of TRPC1:TRPC4 creates a distinct identity compared to TRPC4 homomers. This would help Pharmaceutical scientists to develop drugs that specifically target the TRPC1/TRPC4 heteromer without affecting TRPC4 or other TRP family channels.<ref>Won, J., Kim, J., Kim, J. et al. (2025). Cryo-EM structure of the heteromeric TRPC1/TRPC4 channel. ''Nature Structural & Molecular Biology'', 32(2):326–338. DOI: 10.1038/s41594-024-01408-1</ref> | == Relevance == | ||
1. The asymmetric structure of TRPC1:TRPC4 creates a distinct identity compared to TRPC4 homomers. This would help Pharmaceutical scientists to develop drugs that specifically target the TRPC1/TRPC4 heteromer without affecting TRPC4 or other TRP family channels.<ref>Won, J., Kim, J., Kim, J. et al. (2025). Cryo-EM structure of the heteromeric TRPC1/TRPC4 channel. ''Nature Structural & Molecular Biology'', 32(2):326–338. DOI: 10.1038/s41594-024-01408-1</ref> | |||
2. The structure shows how the antagonist Pico145 binds to the channel, creating a stronger hydrophobic interaction than TRPC4-only channels.<ref>Won, J., Kim, J., Kim, J. et al. (2025). Cryo-EM structure of the heteromeric TRPC1/TRPC4 channel. ''Nature Structural & Molecular Biology'', 32(2):326–338. DOI: 10.1038/s41594-024-01408-1</ref>. This can explain why Pico145 is more potent against TRPC1-containing channels or how drug binding is influenced by heteromer composition. This information can improve selectivity and reduce side effects. | 2. The structure shows how the antagonist Pico145 binds to the channel, creating a stronger hydrophobic interaction than TRPC4-only channels.<ref>Won, J., Kim, J., Kim, J. et al. (2025). Cryo-EM structure of the heteromeric TRPC1/TRPC4 channel. ''Nature Structural & Molecular Biology'', 32(2):326–338. DOI: 10.1038/s41594-024-01408-1</ref>. This can explain why Pico145 is more potent against TRPC1-containing channels or how drug binding is influenced by heteromer composition. This information can improve selectivity and reduce side effects. | ||
3. Residues in TRPC1, such as L601(selectivity filter) and K639(in the central cavity), explains how TRPC1 alters TRPC4's functions.<ref>Won, J., Kim, J., Kim, J. et al. (2025). Cryo-EM structure of the heteromeric TRPC1/TRPC4 channel. ''Nature Structural & Molecular Biology'', 32(2):326–338. DOI: 10.1038/s41594-024-01408-1</ref>. This helps us understand how ion permeability leads to diseases. | 3. Residues in TRPC1, such as L601(selectivity filter) and K639(in the central cavity), explains how TRPC1 alters TRPC4's functions.<ref>Won, J., Kim, J., Kim, J. et al. (2025). Cryo-EM structure of the heteromeric TRPC1/TRPC4 channel. ''Nature Structural & Molecular Biology'', 32(2):326–338. DOI: 10.1038/s41594-024-01408-1</ref>. This helps us understand how ion permeability leads to diseases. | ||
== Structural highlights ==1. The channel, when TRPC1 is incorporated, loses the 4-fold symmetry with one TRPC1 and three TRPC4. This change in arrangement breaks the symmetry of the pore and creates a different, asymmetric ion-conduction pathway. <ref>Won, J., Kim, J., Kim, J. et al. (2025). Cryo-EM structure of the heteromeric TRPC1/TRPC4 channel. ''Nature Structural & Molecular Biology'', 32(2):326–338. DOI: 10.1038/s41594-024-01408-1</ref> | == Structural highlights == | ||
1. The channel, when TRPC1 is incorporated, loses the 4-fold symmetry with one TRPC1 and three TRPC4. This change in arrangement breaks the symmetry of the pore and creates a different, asymmetric ion-conduction pathway. <ref>Won, J., Kim, J., Kim, J. et al. (2025). Cryo-EM structure of the heteromeric TRPC1/TRPC4 channel. ''Nature Structural & Molecular Biology'', 32(2):326–338. DOI: 10.1038/s41594-024-01408-1</ref> | |||
[[Image:Asymmetry_(TRPC1_TRPC4_Stoichiometry)_.png]] | [[Image:Asymmetry_(TRPC1_TRPC4_Stoichiometry)_.png]] | ||
Revision as of 08:28, 7 July 2026
Overview of the TRPC1/TRPC4 Channel
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