Fabrication of Poly Lactic-co-Glycolic Acid Microneedles for Sustained Delivery of Lipophilic Peptide-Carfilzomib

被引:1
作者
Shrestha, Nisha [1 ]
Karve, Tanvi [1 ]
Kipping, Thomas [2 ]
Banga, Ajay K. [1 ]
机构
[1] Mercer Univ, Coll Pharm, Ctr Drug Delivery Res, Dept Pharmaceut Sci, Atlanta, GA 30341 USA
[2] MilliporeSigma Business Merck KGaA, Frankfurter Str 250, D-64293 Darmstadt, Germany
关键词
microneedles; lipophilic peptide; drug delivery; transdermal; sustained release; PLGA types; TRANSDERMAL DELIVERY; DRUG-DELIVERY; CONTROLLED-RELEASE; LOADED PLGA; NANOPARTICLES; DEGRADATION; FORMULATION; SYSTEM;
D O I
10.1021/acs.molpharmaceut.4c00593
中图分类号
R-3 [医学研究方法]; R3 [基础医学];
学科分类号
1001 ;
摘要
Transdermal drug delivery (TDD) is an attractive route of administration, providing several advantages, especially over oral and parenteral routes. However, TDD is significantly restricted due to the barrier imposed by the uppermost layer of the skin, the stratum corneum (SC). Microneedles is a physical enhancement technique that efficiently pierces the SC and facilitates the delivery of both lipophilic and hydrophilic molecules. Dissolving microneedles is a commonly used type that is fabricated utilizing various biodegradable and biocompatible polymers, such as polylactic acid, polyglycolic acid, or poly(lactide-co-glycolide) (PLGA). Such polymers also promote the prolonged release of the drug due to the slow degradation of the polymer matrix following its insertion. We selected carfilzomib, a small therapeutic peptide (M-W: 719.924 g/mol, log P 4.19), as a model drug to fabricate a microneedle-based sustained delivery system. This study is a proof-of-concept investigation in which we fabricated PLGA microneedles using four types of PLGA (50-2A, 50-5A, 75-5A, and 50-7P) to evaluate the feasibility of long-acting transdermal delivery of carfilzomib. Micromolding technique was used to fabricate the PLGA microneedles and characterization tests, including Fourier transform infrared spectroscopy, insertion capability using the skin simulant Parafilm model, histological evaluation, scanning electron microscopy, and confocal microscopy were conducted. In vitro release and permeation testing were conducted in vertical Franz diffusion cells. N-methyl pyrrolidone was utilized as the organic solvent and microneedles were solidified in controlled conditions, which led to good mechanical strength. Both in vitro release and permeation testing showed sustained profiles of carfilzomib over 7 days. The release and permeation were significantly influenced by the molecular weight of PLGA and the lipophilic properties of carfilzomib.
引用
收藏
页码:5192 / 5204
页数:13
相关论文
共 50 条
  • [21] Intracellular Drug Delivery by Poly(lactic-co-glycolic acid) Nanoparticles, Revisited
    Xu, Peisheng
    Gullotti, Emily
    Tong, Ling
    Highley, Christopher B.
    Errabelli, Divya R.
    Hasan, Tayyaba
    Cheng, Ji-Xin
    Kohane, Daniel S.
    Yeo, Yoon
    MOLECULAR PHARMACEUTICS, 2009, 6 (01) : 190 - 201
  • [22] CD200 modulates macrophage cytokine secretion and phagocytosis in response to poly(lactic-co-glycolic acid)microparticles and films
    Chen, Esther Y.
    Chu, Shu-Hui
    Gov, Lanny
    Kim, Yoon Kyung
    Lodoen, Melissa B.
    Tenner, Andrea J.
    Liu, Wendy F.
    JOURNAL OF MATERIALS CHEMISTRY B, 2017, 5 (08) : 1574 - 1584
  • [23] Formulation and characterization of poly(propylacrylic acid)/poly(lactic-co-glycolic acid) blend microparticles for pH-dependent membrane disruption and cytosolic delivery
    Fernando, Lawrence P.
    Lewis, Jamal S.
    Evans, Brian C.
    Duvall, Craig L.
    Keselowsky, Benjamin G.
    JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2018, 106 (04) : 1022 - 1033
  • [24] Poly(lactic-co-glycolic acid): The most ardent and flexible candidate in biomedicine!
    Roointan, Amir
    Kianpour, Sedigheh
    Memari, Fatemeh
    Gandomani, Molood
    Hayat, Seyed Mohammad Gheibi
    Mohammadi-Samani, Soliman
    INTERNATIONAL JOURNAL OF POLYMERIC MATERIALS AND POLYMERIC BIOMATERIALS, 2018, 67 (17) : 1028 - 1049
  • [25] Poly(lactic-co-glycolic acid) as a particulate emulsifier
    Whitby, Catherine P.
    Lim, Li Hui
    Eskandar, Nasrin Ghouchi
    Simovic, Spomenka
    Prestidge, Clive A.
    JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2012, 375 : 142 - 147
  • [26] Synthesis and characterization of magnesium gluconate contained poly(lactic-co-glycolic acid)/chitosan microspheres
    Rahman, Shekh M.
    Mahoney, Christopher
    Sankar, Jagannathan
    Marra, Kacey G.
    Bhattarai, Narayan
    MATERIALS SCIENCE AND ENGINEERING B-ADVANCED FUNCTIONAL SOLID-STATE MATERIALS, 2016, 203 : 59 - 66
  • [27] Eudragit encapsulated cationic poly (lactic-co-glycolic acid) nanoparticles in targeted delivery of capecitabine for augmented colon carcinoma therapy
    Rajasree, P. H.
    Paul, Willi
    Sharma, Chandra P.
    Osmani, Riyaz Ali M.
    Hani, Umme
    Srivastava, Atul
    JOURNAL OF DRUG DELIVERY SCIENCE AND TECHNOLOGY, 2018, 46 : 302 - 311
  • [28] Poly(lactic-co-glycolic acid) Microspheres Containing a Recombinant Parathyroid Hormone (1-34) for Sustained Release in a Rat Model
    Baskaran, R.
    Lee, C. J.
    Kang, S. M.
    Oh, Y.
    Jin, S. E.
    Lee, D. H.
    Yang, S. G.
    INDIAN JOURNAL OF PHARMACEUTICAL SCIENCES, 2018, 80 (05) : 837 - 843
  • [29] Electrohydrodynamic encapsulation of cisplatin in poly (lactic-co-glycolic acid) nanoparticles for controlled drug delivery
    Parhizkar, Maryam
    Reardon, Philip J. T.
    Knowles, Jonathan C.
    Browning, Richard J.
    Stride, Eleanor
    Barbara, Pedley R.
    Harker, Anthony H.
    Edirisinghe, Mohan
    NANOMEDICINE-NANOTECHNOLOGY BIOLOGY AND MEDICINE, 2016, 12 (07) : 1919 - 1929
  • [30] Longitudinal acoustic properties of poly(lactic acid) and poly(lactic-co-glycolic acid)
    Parker, N. G.
    Mather, M. L.
    Morgan, S. P.
    Povey, M. J. W.
    BIOMEDICAL MATERIALS, 2010, 5 (05)