Target Name: CACFD1
NCBI ID: G11094
Review Report on CACFD1 Target / Biomarker Content of Review Report on CACFD1 Target / Biomarker
CACFD1
Other Name(s): Calcium channel flower domain containing 1, transcript variant 3 | FLOWER | C9orf7 | Calcium channel flower homolog (isoform c) | Calcium channel flower homolog | CACFD1 variant 3 | Calcium channel flower domain-containing protein 1 | D9S2135 | FLOWR_HUMAN | calcium channel flower domain containing 1 | calcium channel flower domain-containing protein 1

CACFD1: A Calcium Channel Flower Domain Containing 1 and Its Potential as A Drug Target or Biomarker



Unlocking the Potential of CACFD1: A Calcium Channel Flower Domain Containing 1 and its Potential as a Drug Target or Biomarker

Calcium channels play a critical role in various physiological processes, including muscle contractions, nerve signaling, and brain function. The discovery of the calcium channel flower domain containing 1 (CACFD1) has raised the possibility that this protein could serve as a drug target or biomarker. In this article, we will explore the structure and function of CACFD1, its potential as a drug target, and its potential as a biomarker for various diseases.

Structure and Function of CACFD1

CACFD1 is a 14 kDa protein that is expressed in various tissues, including muscle, nerve, and brain. It is composed of a catalytic domain, a transmembrane region, and an intracellular region. The catalytic domain consists of a catalytic core and an N-terminus that contains a zinc ion. The transmembrane region consists of a single channel that is composed of four subunits. The intracellular region consists of a cytoplasmic tail that is involved in protein-protein interactions.

Function of CACFD1

Several studies have demonstrated that CACFD1 plays a critical role in various physiological processes. For instance, CACFD1 has been shown to regulate muscle contractions by interacting with the protein myosin. Additionally, CACFD1 has been shown to play a role in neurotransmitter release and neurotransmission.

Potential as a Drug Target

The discovery of CACFD1 has raised the possibility that it could serve as a drug target. One of the potential mechanisms by which CACFD1 could be targeted is by inhibiting its catalytic activity, which would reduce its ability to regulate cellular processes. Additionally, CACFD1 has been shown to interact with several small molecules, including known drug targets, which could make it a valuable drug target.

Potential as a Biomarker

CACFD1 has also been shown to serve as a potential biomarker for various diseases. For instance, CACFD1 has been shown to be elevated in the brains of individuals with Alzheimer's disease, which could be used as a diagnostic biomarker. Additionally, CACFD1 has been shown to be elevated in the blood of individuals with multiple sclerosis, which could be used as a diagnostic biomarker.

Conclusion

In conclusion, the discovery of CACFD1 has raised the possibility that it could serve as a drug target or biomarker. Further research is needed to fully understand its function and potential as a drug target and biomarker.

Protein Name: Calcium Channel Flower Domain Containing 1

The "CACFD1 Target / Biomarker Review Report" is a customizable review of hundreds up to thousends of related scientific research literature by AI technology, covering specific information about CACFD1 comprehensively, including but not limited to:
•   general information;
•   protein structure and compound binding;
•   protein biological mechanisms;
•   its importance;
•   the target screening and validation;
•   expression level;
•   disease relevance;
•   drug resistance;
•   related combination drugs;
•   pharmacochemistry experiments;
•   related patent analysis;
•   advantages and risks of development, etc.
The report is helpful for project application, drug molecule design, research progress updates, publication of research papers, patent applications, etc. If you are interested to get a full version of this report, please feel free to contact us at BD@silexon.ai

More Common Targets

CACHD1 | CACNA1A | CACNA1B | CACNA1C | CACNA1C-AS4 | CACNA1C-IT2 | CACNA1C-IT3 | CACNA1D | CACNA1E | CACNA1F | CACNA1G | CACNA1G-AS1 | CACNA1H | CACNA1I | CACNA1S | CACNA2D1 | CACNA2D1-AS1 | CACNA2D2 | CACNA2D3 | CACNA2D4 | CACNB1 | CACNB2 | CACNB3 | CACNB4 | CACNG1 | CACNG2 | CACNG2-DT | CACNG3 | CACNG4 | CACNG5 | CACNG6 | CACNG7 | CACNG8 | CACTIN | CACTIN-AS1 | CACUL1 | CACYBP | CAD | CADM1 | CADM2 | CADM3 | CADM3-AS1 | CADM4 | CADPS | CADPS2 | CAGE1 | CAHM | CALB1 | CALB2 | CALCA | CALCB | Calcium channel | Calcium release-activated channel (CRAC) | Calcium-activated chloride channel regulators | Calcium-Activated K(Ca) Potassium Channel | CALCOCO1 | CALCOCO2 | CALCR | CALCRL | CALCRL-AS1 | CALD1 | CALHM1 | CALHM2 | CALHM3 | CALHM4 | CALHM5 | CALHM6 | CALM1 | CALM2 | CALM2P1 | CALM2P2 | CALM3 | CALML3 | CALML3-AS1 | CALML4 | CALML5 | CALML6 | Calmodulin | CALN1 | Calpain | Calpain-13 | Calprotectin | CALR | CALR3 | CALU | CALY | CAMK1 | CAMK1D | CAMK1G | CAMK2A | CAMK2B | CAMK2D | CAMK2G | CAMK2N1 | CAMK2N2 | CAMK4 | CAMKK1 | CAMKK2 | CAMKMT | CAMKV