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07579

Sigma-Aldrich

Synperonic® F 108

surfactant, non-ionic

Synonym(s):
Poly(ethylene glycol)-block-poly(propylene glycol)-block-poly(ethylene glycol), Poly(propylene glycol)-block-poly(ethylene glycol)-block-poly(propylene glycol)
CAS Number:
MDL number:
PubChem Substance ID:
NACRES:
NA.22

Quality Level

impurities

≤0.5% water

mp

56-61 °C

hydroxyl value

6‑9 mg KOH/g

application(s)

detection

InChI

1S/C3H6O.C2H4O/c1-3-2-4-3;1-2-3-1/h3H,2H2,1H3;1-2H2

InChI key

RVGRUAULSDPKGF-UHFFFAOYSA-N

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1 of 4

This Item
K48948621616758
Synperonic® F 108 surfactant, non-ionic

Sigma-Aldrich

07579

Synperonic® F 108

Kolliphor® P 188 solid

Sigma-Aldrich

K4894

Kolliphor® P 188

Synperonic® PE P105 surfactant

Sigma-Aldrich

86216

Synperonic® PE P105

Poloxamer 407 purified, non-ionic

Sigma-Aldrich

16758

Poloxamer 407

mp

56-61 °C

mp

-

mp

40-50 °C

mp

-

application(s)

detection

application(s)

sample preservation

application(s)

-

application(s)

-

Quality Level

100

Quality Level

-

Quality Level

-

Quality Level

-

hydroxyl value

6‑9 mg KOH/g

hydroxyl value

-

hydroxyl value

15‑19 mg

hydroxyl value

-

General description

Synperonic F-108 is a polyoxyethylene-polyoxypropylene block copolymer. It has two hydrophilic groups that are attached to a central hydrophobic group that self-assembles in an aqueous solution into clusters known as micelles. This water-soluble surfactant is used as effective emulsification and solubilizing agent in a wide range of applications.

Application

Synperonic® F 108 may be used as an adjuvant for lentiviral (LV) transduction. It possesses higher (LV) transduction efficiency than polybrene.

Legal Information

Synperonic is a registered trademark of Croda International PLC

Storage Class Code

10 - Combustible liquids

WGK

WGK 1

Flash Point(F)

Not applicable

Flash Point(C)

Not applicable

Personal Protective Equipment

dust mask type N95 (US), Eyeshields, Gloves

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Feby Wijaya Pratiwi et al.
Biomedicines, 9(1) (2020-12-31)
Mesoporous silica nanoparticles (MSNs) have emerged as a prominent nanomedicine platform, especially for tumor-related nanocarrier systems. However, there is increasing concern about the ability of nanoparticles (NPs) to penetrate solid tumors, resulting in compromised antitumor efficacy. Because the physicochemical properties
Bishnubrata Patra et al.
Scientific reports, 6, 21061-21061 (2016-02-16)
Three-dimensional (3D) tumor spheroid possesses great potential as an in vitro model to improve predictive capacity for pre-clinical drug testing. In this paper, we combine advantages of flow cytometry and microfluidics to perform drug testing and analysis on a large
Ines Höfig et al.
The journal of gene medicine, 14(8), 549-560 (2012-08-14)
Although lentiviral transduction methods are widely used, their broader application is dependent upon the optimization of lentiviral transduction efficiency for a broad range of cell types. In the present study, we focus on the evaluation of two chemical classes with
Céline Durand-Gasselin et al.
Langmuir : the ACS journal of surfaces and colloids, 27(20), 12329-12335 (2011-09-29)
Aggregation of thermosensitive polymer-coated gold nanoparticles was performed in aqueous solution in the presence of a triblock copolymer poly(ethylene oxide)-block-poly(propylene oxide)-block-poly(ethylene oxide) (Pluronic P123, PEO(20)-PPO(68)-PEO(20)). The gold nanoparticles, AuNPs, which are covered by thermosensitive statistical copolymers poly(EO(x)-st-PO(y)), aggregate when the
Liyan Zhao et al.
Colloids and surfaces. B, Biointerfaces, 97, 101-108 (2012-05-23)
In this study, curcumin (Cur) loaded mixed micelles (Cur-PF), composed of Pluronic P123 (P123) and Pluronic F68 (F68), was prepared using the thin-film hydration method and evaluated in vitro. The preparation process was optimized with a central composite design (CCD).

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