Date published: 2026-1-9

1-800-457-3801

SCBT Portrait Logo
Seach Input

LOC100041107 Activators

The chemical class referred to as LOC100041107 Activators, also known by the designation predicted gene 3142 activators, includes a range of compounds that specifically target the LOC100041107 gene, a component of the complex genetic mosaic that drives the regulatory and functional machinations within biological organisms. These activators are uniquely characterized by their ability to modulate the expression and functionality of LOC100041107, playing a pivotal role in the gene's contribution to cellular and systemic processes. The interaction between LOC100041107 and its activators is mediated through a series of sophisticated molecular mechanisms. These may involve direct interactions with the DNA sequences governing the gene's expression, modifications of the transcriptional complex, or alterations in the chromatin structure, all aimed at modulating the gene's activity within the cell.

Understanding the impact and mechanism of action of LOC100041107 activators necessitates a comprehensive grasp of gene expression regulation and its implications for cellular physiology. The modulation of LOC100041107 by these activators can lead to significant alterations in the gene's role in various biological pathways, potentially affecting processes such as transcription, translation, and post-translational modifications of proteins. This, in turn, can influence cellular signaling pathways, metabolic activities, and the maintenance of cellular structure and function. The exploration of LOC100041107 activators thus offers valuable insights into the complex interplay between genetic elements and the molecular machinery that regulates their expression. Such studies contribute to a deeper understanding of the intricate networks that underlie cellular function and the regulation of gene expression, enhancing our knowledge of the fundamental principles that govern biological systems.

SEE ALSO...

Items 1 to 10 of 12 total

Display:

Product NameCAS #Catalog #QUANTITYPriceCitationsRATING

Retinoic Acid, all trans

302-79-4sc-200898
sc-200898A
sc-200898B
sc-200898C
500 mg
5 g
10 g
100 g
$66.00
$325.00
$587.00
$1018.00
28
(1)

Retinoic acid acts on retinoic acid receptors, potentially regulating gene transcription involved in cell differentiation.

(−)-Epigallocatechin Gallate

989-51-5sc-200802
sc-200802A
sc-200802B
sc-200802C
sc-200802D
sc-200802E
10 mg
50 mg
100 mg
500 mg
1 g
10 g
$43.00
$73.00
$126.00
$243.00
$530.00
$1259.00
11
(1)

EGCG can modulate various signaling pathways, possibly leading to changes in gene expression.

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, a key regulator of protein synthesis and cell growth, affecting the expression of genes in these pathways.

Tunicamycin

11089-65-9sc-3506A
sc-3506
5 mg
10 mg
$172.00
$305.00
66
(3)

Tunicamycin inhibits N-linked glycosylation, which can cause ER stress and potentially affect gene expression.

Thapsigargin

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

Thapsigargin disrupts calcium homeostasis, leading to cellular stress and potentially changing gene expression.

Spironolactone

52-01-7sc-204294
50 mg
$109.00
3
(1)

Spironolactone antagonizes aldosterone, potentially influencing the expression of aldosterone-regulated genes.

Hydroxyurea

127-07-1sc-29061
sc-29061A
5 g
25 g
$78.00
$260.00
18
(1)

Hydroxyurea can induce DNA damage response, potentially leading to alterations in gene expression.

Paraquat chloride

1910-42-5sc-257968
250 mg
$168.00
7
(1)

Paraquat generates reactive oxygen species, which can signal changes in gene transcription.

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 can influence transcription factor activity and gene expression.

Lead(II) Acetate

301-04-2sc-507473
5 g
$85.00
(0)

Lead(II) acetate can cause oxidative stress and DNA damage, potentially affecting gene expression.