J 2022

Comparative Study of Powder Carriers Physical and Structural Properties

KOSTELANSKÁ, Klára, Barbora Blahova PRUDILOVA, Sylva HOLESOVA, Jakub VLCEK, David VETCHÝ et. al.

Základní údaje

Originální název

Comparative Study of Powder Carriers Physical and Structural Properties

Autoři

KOSTELANSKÁ, Klára (203 Česká republika, domácí), Barbora Blahova PRUDILOVA, Sylva HOLESOVA, Jakub VLCEK, David VETCHÝ (203 Česká republika, domácí) a Jan GAJDZIOK (203 Česká republika, garant, domácí)

Vydání

Pharmaceutics, Basel, MDPI, 2022, 1999-4923

Další údaje

Jazyk

angličtina

Typ výsledku

Článek v odborném periodiku

Obor

30104 Pharmacology and pharmacy

Stát vydavatele

Švýcarsko

Utajení

není předmětem státního či obchodního tajemství

Odkazy

Impakt faktor

Impact factor: 5.400

Kód RIV

RIV/00216224:14160/22:00128706

Organizační jednotka

Farmaceutická fakulta

UT WoS

000785406900001

Klíčová slova anglicky

powder carriers; adsorption; aluminometasilicates; liquisolid systems; solid dosage form; pharmaceutical technology

Štítky

Příznaky

Mezinárodní význam, Recenzováno
Změněno: 22. 2. 2023 16:45, JUDr. Sabina Krejčiříková

Anotace

V originále

High specific surface area (SSA), porous structure, and suitable technological characteristics (flow, compressibility) predetermine powder carriers to be used in pharmaceutical technology, especially in the formulation of liquisolid systems (LSS) and solid self-emulsifying delivery systems (s-SEDDS). Besides widely used microcrystalline cellulose, other promising materials include magnesium aluminometasilicates, mesoporous silicates, and silica aerogels. Clay minerals with laminar or fibrous internal structures also provide suitable properties for liquid drug incorporation. This work aimed at a comparison of 14 carriers' main properties. Cellulose derivatives, silica, silicates, and clay minerals were evaluated for flow properties, shear cell experiments, SSA, hygroscopicity, pH, particle size, and SEM. The most promising materials were magnesium aluminometasilicates, specifically Neusilin (R) US2, due to its proper flow, large SSA, etc. Innovative materials such as FujiSil (R) or Syloid (R) XDP 3050 were for their properties evaluated as suitable. The obtained data can help choose a suitable carrier for formulations where the liquid phase is incorporated into the solid dosage form. All measurements were conducted by the same methodology and under the same conditions, allowing a seamless comparison of property evaluation between carriers, for which available company or scientific sources do not qualify due to different measurements, conditions, instrumentation, etc.