Date published: 2025-11-23

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ADAM5 Inhibitors

ADAM5 inhibitors represent a specialized class of chemical compounds that target and modulate the activity of the ADAM5 protein, a member of the ADAM (A Disintegrin and Metalloproteinase) family. ADAM5, also known as 'ADAM-M9', is characterized by its multifunctional nature, integrating both disintegrin and metalloproteinase domains. These domains are crucial for its enzymatic functions, which include the cleavage of extracellular matrix proteins and the processing of membrane-bound proteins. This proteolytic activity plays a significant role in various cellular processes, such as cell-cell adhesion, migration, and signaling. By inhibiting ADAM5, these compounds can interfere with its ability to interact with and degrade specific substrates.

The chemical mechanisms underlying ADAM5 inhibition involve the disruption of the enzyme's active site or the prevention of substrate binding. ADAM5 inhibitors typically possess structures that are designed to bind specifically to the enzyme's catalytic domain, thereby impeding its ability to cleave target proteins. This inhibition can have broad implications for the regulation of cellular interactions and the remodeling of extracellular matrices. The study of ADAM5 inhibitors provides valuable insights into the enzyme's biological roles and helps elucidate the complex mechanisms by which ADAM5 influences cellular and tissue dynamics. The design and application of these inhibitors are instrumental in understanding the function of ADAM5 within various physiological and pathological contexts.

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Product NameCAS #Catalog #QUANTITYPriceCitationsRATING

Doxycycline-d6

564-25-0 unlabeledsc-218274
1 mg
$16500.00
(0)

Doxycycline may downregulate ADAM5 by inhibiting its mRNA synthesis due to its broad action as an antibiotic that can alter protein synthesis.

Retinoic Acid, all trans

302-79-4sc-200898
sc-200898A
sc-200898B
sc-200898C
500 mg
5 g
10 g
100 g
$65.00
$319.00
$575.00
$998.00
28
(1)

Retinoic Acid could decrease ADAM5 levels by promoting the differentiation of cells that typically express lower levels of metalloproteases.

Dexamethasone

50-02-2sc-29059
sc-29059B
sc-29059A
100 mg
1 g
5 g
$76.00
$82.00
$367.00
36
(1)

Dexamethasone may suppress ADAM5 expression through its potent glucocorticoid activity that can lead to transcriptional repression of certain genes.

Thalidomide

50-35-1sc-201445
sc-201445A
100 mg
500 mg
$109.00
$350.00
8
(0)

Thalidomide could reduce the transcription of ADAM5 by altering the production of growth factors and cytokines that stimulate ADAM5 expression.

Hydroxyurea

127-07-1sc-29061
sc-29061A
5 g
25 g
$76.00
$255.00
18
(1)

Hydroxyurea might decrease ADAM5 synthesis by disrupting the DNA repair process, slowing down the cell cycle and thus reducing overall protein production.

Methotrexate

59-05-2sc-3507
sc-3507A
100 mg
500 mg
$92.00
$209.00
33
(5)

Methotrexate has the potential to inhibit ADAM5 expression by blocking the folate pathway, thus reducing the availability of nucleotides necessary for gene transcription.

Suberoylanilide Hydroxamic Acid

149647-78-9sc-220139
sc-220139A
100 mg
500 mg
$130.00
$270.00
37
(2)

Suberoylanilide Hydroxamic Acid might lead to the suppression of ADAM5 through histone deacetylase inhibition, which can alter the expression patterns of many genes.

5-Azacytidine

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

5-Azacytidine may inhibit ADAM5 by incorporating into the gene sequence, leading to hypomethylation and potentially silencing the ADAM5 gene.

Triptolide

38748-32-2sc-200122
sc-200122A
1 mg
5 mg
$88.00
$200.00
13
(1)

Triptolide could downregulate ADAM5 expression by hindering the transcriptional activity of NF-κB, a factor that often enhances the expression of genes like ADAM5.

Curcumin

458-37-7sc-200509
sc-200509A
sc-200509B
sc-200509C
sc-200509D
sc-200509F
sc-200509E
1 g
5 g
25 g
100 g
250 g
1 kg
2.5 kg
$36.00
$68.00
$107.00
$214.00
$234.00
$862.00
$1968.00
47
(1)

Curcumin might decrease ADAM5 production by inhibiting NF-κB signaling, which is frequently implicated in the transcriptional activation of various genes.