Date published: 2025-10-10

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EML4 Activators

EML4 Activators is a chemical class of compounds that primarily function as modulators of the EML4 protein, also known as echinoderm microtubule-associated protein-like 4. EML4 is a cytoskeletal protein that plays a crucial role in cellular processes related to microtubules, which are dynamic filaments involved in various cellular functions, including intracellular transport, cell division, and maintenance of cell shape. The activation of EML4 by these compounds can have significant implications for cellular physiology and signal transduction pathways.

These activators are designed to interact with EML4 in a way that enhances its function, promoting microtubule stability and influencing microtubule organization within the cell. By binding to EML4, they can impact the dynamics of microtubules, which are essential for processes such as cell division and intracellular trafficking. This modulation of EML4 activity can have downstream effects on cellular processes that rely on the microtubule cytoskeleton, ultimately influencing cell shape, movement, and the distribution of cellular components. Moreover, the specific mechanisms by which EML4 activators interact with this protein may vary, and the chemical class likely includes diverse compounds with distinct modes of action. Understanding the precise mechanisms of EML4 activation and its downstream effects on cellular processes can shed light on fundamental cell biology and may have implications for various fields of research, including cancer biology, neurobiology, and cell development.

SEE ALSO...

Items 1 to 10 of 12 total

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Product NameCAS #Catalog #QUANTITYPriceCitationsRATING

Taxol

33069-62-4sc-201439D
sc-201439
sc-201439A
sc-201439E
sc-201439B
sc-201439C
1 mg
5 mg
25 mg
100 mg
250 mg
1 g
$40.00
$73.00
$217.00
$242.00
$724.00
$1196.00
39
(2)

Paclitaxel stabilizes microtubules by binding to them, affecting microtubule dynamics.

Nocodazole

31430-18-9sc-3518B
sc-3518
sc-3518C
sc-3518A
5 mg
10 mg
25 mg
50 mg
$58.00
$83.00
$140.00
$242.00
38
(2)

Nocodazole disrupts microtubule polymerization, potentially affecting microtubule-associated functions of EML4.

Colchicine

64-86-8sc-203005
sc-203005A
sc-203005B
sc-203005C
sc-203005D
sc-203005E
1 g
5 g
50 g
100 g
500 g
1 kg
$98.00
$315.00
$2244.00
$4396.00
$17850.00
$34068.00
3
(2)

Colchicine interferes with microtubule assembly and dynamics, potentially impacting EML4-mediated microtubule regulation.

Vinblastine

865-21-4sc-491749
sc-491749A
sc-491749B
sc-491749C
sc-491749D
10 mg
50 mg
100 mg
500 mg
1 g
$100.00
$230.00
$450.00
$1715.00
$2900.00
4
(0)

Vinblastine disrupts microtubule function, potentially influencing EML4-associated microtubule processes.

Epothilone B, Synthetic

152044-54-7sc-203944
2 mg
$176.00
(0)

Epothilone B stabilizes microtubules, similar to paclitaxel, and may indirectly affect EML4 by modulating microtubule dynamics.

Griseofulvin

126-07-8sc-202171A
sc-202171
sc-202171B
5 mg
25 mg
100 mg
$83.00
$216.00
$586.00
4
(2)

Griseofulvin inhibits microtubule formation, potentially influencing EML4-mediated microtubule processes.

Okadaic Acid

78111-17-8sc-3513
sc-3513A
sc-3513B
25 µg
100 µg
1 mg
$285.00
$520.00
$1300.00
78
(4)

Phosphatase inhibitors like okadaic acid can modulate signaling pathways that indirectly affect EML4 activity.

Erlotinib, Free Base

183321-74-6sc-396113
sc-396113A
sc-396113B
sc-396113C
sc-396113D
500 mg
1 g
5 g
10 g
100 g
$85.00
$132.00
$287.00
$495.00
$3752.00
42
(0)

Some kinase inhibitors, like erlotinib, can affect EML4 activity by altering downstream signaling pathways.

Colcemid

477-30-5sc-202550A
sc-202550
sc-202550B
sc-202550C
sc-202550D
sc-202550E
1 mg
5 mg
10 mg
50 mg
100 mg
500 mg
$67.00
$159.00
$312.00
$928.00
$1856.00
$6706.00
7
(1)

Tubulin-binding agents like colcemid may interfere with EML4-microtubule interactions, affecting EML4 function.

Arsenic(III) oxide

1327-53-3sc-210837
sc-210837A
250 g
1 kg
$87.00
$224.00
(0)

Arsenic trioxide can modulate signaling pathways involved in EML4 regulation indirectly through cellular signaling processes.