Date published: 2026-4-24

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LOC100041115 Activators

The chemical class known as LOC100041115 Activators, also referred to as PRAME like 43 activators, represents a group of compounds that are specifically designed to target and modulate the activity of the LOC100041115 gene, which is also known by its alternative name, PRAME like 43. This gene is part of the intricate web of genetic sequences that play crucial roles in the regulation of cellular functions and the maintenance of genomic stability within organisms. Activators within this chemical class are characterized by their unique ability to influence the expression levels of LOC100041115, thereby impacting its biological functions and contributions to cellular processes. The mechanisms through which these activators exert their effects are complex and multifaceted, involving direct interactions with the gene's promoter regions, altering transcription factor dynamics, or modifying the chromatin landscape, ultimately leading to changes in gene expression patterns.

The study of LOC100041115 activators requires an in-depth understanding of molecular biology and genetics, particularly the nuances of gene regulation and expression. By modulating the activity of LOC100041115, these activators can have profound effects on the cellular pathways in which this gene is involved, potentially influencing processes such as cell differentiation, proliferation, and response to external stimuli. This modulation is critical for elucidating the role of LOC100041115 in cellular physiology and its interactions with other genetic elements and regulatory networks. The investigation of LOC100041115 activators thus contributes significantly to our understanding of the genetic mechanisms that underpin cellular function and the complex regulatory systems that govern gene expression. Through this research, scientists aim to unravel the intricate balance between genetic regulation and cellular behavior, shedding light on the fundamental processes that sustain life at the molecular level.

SEE ALSO...

Product NameCAS #Catalog #QUANTITYPriceCitationsRATING

Zinc

7440-66-6sc-213177
100 g
$48.00
(0)

Zinc is essential for DNA synthesis and, as a cofactor, can influence various transcription factors and potentially gene expression.

Lithium

7439-93-2sc-252954
50 g
$214.00
(0)

Lithium influences the Wnt signaling pathway, which can alter gene expression patterns and cell fate.

Sodium arsenite, 0.1N Standardized Solution

7784-46-5sc-301816
500 ml
$130.00
4
(0)

Sodium arsenite can induce oxidative stress, which may affect the expression of stress response genes.

Trichostatin A

58880-19-6sc-3511
sc-3511A
sc-3511B
sc-3511C
sc-3511D
1 mg
5 mg
10 mg
25 mg
50 mg
$152.00
$479.00
$632.00
$1223.00
$2132.00
33
(3)

Trichostatin A is a histone deacetylase inhibitor, which can lead to chromatin remodeling and affect gene expression.

5-Azacytidine

320-67-2sc-221003
500 mg
$280.00
4
(1)

5-Azacytidine is a DNA methyltransferase inhibitor, potentially causing hypomethylation of DNA and alteration of gene expression.

Bisphenol A

80-05-7sc-391751
sc-391751A
100 mg
10 g
$300.00
$490.00
5
(0)

Bisphenol A can act as an endocrine disruptor, potentially altering the expression of various genes.

Cholecalciferol

67-97-0sc-205630
sc-205630A
sc-205630B
1 g
5 g
10 g
$71.00
$163.00
$296.00
2
(1)

Vitamin D3 binds to the vitamin D receptor, which may regulate expression of target genes involved in calcium homeostasis.

D,L-Sulforaphane

4478-93-7sc-207495A
sc-207495B
sc-207495C
sc-207495
sc-207495E
sc-207495D
5 mg
10 mg
25 mg
1 g
10 g
250 mg
$153.00
$292.00
$489.00
$1325.00
$8465.00
$933.00
22
(1)

Sulforaphane can influence the expression of genes associated with antioxidant response through the Nrf2 pathway.

Atrazine

1912-24-9sc-210846
5 g
$165.00
1
(1)

Atrazine can induce oxidative stress and may affect gene expression associated with detoxification and stress response pathways.

Dimethyl fumarate

624-49-7sc-239774
25 g
$28.00
6
(1)

Dimethyl fumarate can modulate the nuclear factor (erythroid-derived 2)-like 2 (Nrf2) pathway, which may influence gene expression.