Date published: 2026-5-17

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C1orf95 Activators

C1orf95 activators represent a chemical class of compounds meticulously designed to interact with and modulate the activity of the C1orf95 protein. C1orf95, also known as Chromosome 1 Open Reading Frame 95, is a relatively novel protein whose functional roles and biological significance are currently under investigation. As an open reading frame located on chromosome 1, C1orf95 lacks a well-defined functional annotation, contributing to its status as a poorly characterized protein. However, emerging research suggests potential involvement in various cellular processes, including but not limited to gene expression regulation, protein-protein interactions, and intracellular signaling cascades. The term activators implies that compounds within this class engage with C1orf95 to influence its activity, potentially leading to downstream effects on cellular physiology and molecular pathways.

Investigations into C1orf95 activators aim to unravel the molecular mechanisms underlying their interaction with the C1orf95 protein and how this interaction impacts cellular processes. Understanding the pharmacological properties of these compounds is crucial for deciphering how they affect C1orf95 activity and potentially influence gene expression, protein interactions, or other cellular functions. By delving into the biological functions and regulatory mechanisms of C1orf95, researchers aim to deepen our understanding of cellular biology and may uncover novel insights into the molecular pathways governing cellular homeostasis. Continued exploration of C1orf95 activators holds promise for advancing our knowledge of cellular physiology and may provide insights into new strategies for manipulating cellular function within experimental contexts.

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Items 1 to 10 of 12 total

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Product NameCAS #Catalog #QUANTITYPriceCitationsRATING

Polyinosinic-polycytidylic acid potassium salt

31852-29-6sc-202767
5 mg
$198.00
(1)

Poly I:C is a synthetic analogue of double-stranded RNA that can activate toll-like receptor 3, potentially influencing gene expression through antiviral response pathways.

PMA

16561-29-8sc-3576
sc-3576A
sc-3576B
sc-3576C
sc-3576D
1 mg
5 mg
10 mg
25 mg
100 mg
$41.00
$132.00
$214.00
$500.00
$948.00
119
(6)

PMA activates protein kinase C, which may modulate various transcription factors and alter gene expression.

Thapsigargin

67526-95-8sc-24017
sc-24017A
1 mg
5 mg
$136.00
$446.00
114
(2)

Thapsigargin is a SERCA pump inhibitor, leading to increased cytosolic calcium levels that can affect calcium-dependent transcriptional pathways.

SB 203580

152121-47-6sc-3533
sc-3533A
1 mg
5 mg
$90.00
$349.00
284
(5)

SB203580 is a p38 MAPK inhibitor, potentially altering gene expression by modulating the MAPK signaling pathway.

SP600125

129-56-6sc-200635
sc-200635A
10 mg
50 mg
$40.00
$150.00
257
(3)

SP600125 is an inhibitor of c-Jun N-terminal kinase (JNK), which could influence gene expression by affecting JNK signaling.

Rapamycin

53123-88-9sc-3504
sc-3504A
sc-3504B
1 mg
5 mg
25 mg
$63.00
$158.00
$326.00
233
(4)

Rapamycin inhibits mTOR, which plays a key role in protein synthesis and cell growth, thereby potentially affecting gene expression.

LY 294002

154447-36-6sc-201426
sc-201426A
5 mg
25 mg
$123.00
$400.00
148
(1)

LY294002 is a PI3K inhibitor, potentially affecting the PI3K/Akt signaling pathway and associated gene expression changes.

Cyclopamine

4449-51-8sc-200929
sc-200929A
1 mg
5 mg
$94.00
$208.00
19
(1)

Cyclopamine inhibits the Hedgehog signaling pathway, which could result in alterations in gene expression patterns.

U-0126

109511-58-2sc-222395
sc-222395A
1 mg
5 mg
$64.00
$246.00
136
(2)

U0126 is a MEK inhibitor, potentially modifying gene expression through the inhibition of the ERK/MAPK signaling pathway.

DAPT

208255-80-5sc-201315
sc-201315A
sc-201315B
sc-201315C
5 mg
25 mg
100 mg
1 g
$40.00
$120.00
$480.00
$2141.00
47
(3)

DAPT is a γ-secretase inhibitor, which may influence Notch signaling and consequently affect gene expression.