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Polymalic Acid-based Nano Biopolymers for Targeting of Multiple Tumor Markers: An Opportunity for Personalized Medicine?
Published on: June 13, 2014
Simultaneous targeting of multiple etiological using a nanosized strategy for psoriasis management
Xinyu Jiang1, Minghui Wang1, Linyi Zhang1
1Wenzhou Municipal Key Laboratory of Pediatric Pharmacy, Department of Pharmacy, The Second Affiliated Hospital and Yuying Children's Hospital of Wenzhou Medical University, Wenzhou, 325027, China.
Abstract:
Psoriasis is an inflammatory skin disease influenced by the immune system, with a notable tendency to recurrence, characterized by irregular keratinocyte multiplication, presence of inflammatory cells, excessive secretion of pro-inflammatory chemicals, and abnormal blood vessel proliferation. Even though the detailed pathogenesis of psoriasis has not been fully determined, simultaneous targeting multiple pathways involved in disease progression may be more effective than currently available therapeutic strategies. In this study, we developed a bilirubin-conjugated hyaluronic acid-assembled, lapatinib/rosiglitazone-coloaded nanoparticle (LR@HBn) to target both peroxisome proliferator-activated receptor γ (PPARγ) and epidermal growth factor receptor (EGFR) as well as intervene nuclear factor kappa B (NF-κB) signaling to effectively alleviate the progression of psoriasis by suppressing inflammatory microenvironment, preventing abnormal cellular growth, scavenging reactive oxygen species (ROS), and inhibiting interleukin-17A secretion. The formulation of LR@HBn was optimized by measuring particle size, potential, drug loading capacity and ROS response ability. For the convenience of topical administration, LR@HBn was encapsulated in a volatile film-forming carboxymethyl chitosan gel (LR@HBn-G). Ex vivo skin penetration retention and in vivo therapeutic effect and recurrence prevention ability were also evaluated. The optimized LR@HBn had an average particle size (79.07 ± 1.10 nm), a negative zeta potential of (-19.37 ± 4.22 mV) and high entrapment efficiency over 80 %, achieving high penetration and long retention of the pharmacological agents at the lesion site. Owing to its capacity to participate in decomposition reactions in response to ROS, LR@HBn is able to transport pharmacological cargo specifically at the lesion site. In vitro and in vivo experiments revealed excellent antioxidative, anti-inflammatory, anti-proliferative features and safety of LR@HBn, with resultant attenuation of psoriatic disease progression and suppression of recurrence. Taken collectively, these results point to LR@HBn as a promising and advanced strategy for treating psoriasis by administering topically.
Insights
This study introduces a novel nanoparticle formulation (LR@HBn) for topical psoriasis treatment. The nanoparticle effectively targets multiple disease pathways, reducing inflammation and abnormal cell growth for improved therapeutic outcomes.
Area of Science:
- Dermatology and Nanomedicine: Focus on advanced therapeutic strategies for skin diseases.
Background:
- Psoriasis is a chronic inflammatory skin condition characterized by immune system dysregulation, abnormal cell growth, and inflammation.
- Current psoriasis treatments face limitations, necessitating novel approaches that target multiple disease pathways simultaneously.
Purpose of the Study:
- To develop and evaluate a novel nanoparticle formulation (LR@HBn) for targeted topical delivery in psoriasis treatment.
- To assess the efficacy of LR@HBn in modulating key signaling pathways (PPARγ, EGFR, NF-κB) involved in psoriasis pathogenesis.
Main Methods:
- Development and optimization of bilirubin-conjugated hyaluronic acid-assembled nanoparticles co-loaded with lapatinib and rosiglitazone (LR@HBn).
- Evaluation of nanoparticle characteristics including size, zeta potential, drug loading, and ROS responsiveness.
- Assessment of skin penetration, retention, and therapeutic efficacy in vitro and in vivo models.
- Encapsulation of LR@HBn into a carboxymethyl chitosan gel for topical administration (LR@HBn-G).
Main Results:
- Optimized LR@HBn nanoparticles exhibited favorable physicochemical properties (size ~79 nm, negative zeta potential, >80% entrapment efficiency).
- LR@HBn demonstrated significant ROS-scavenging ability and targeted drug delivery to lesion sites.
- In vitro and in vivo studies confirmed LR@HBn's potent antioxidative, anti-inflammatory, and anti-proliferative effects, leading to psoriasis symptom attenuation and recurrence prevention.
Conclusions:
- LR@HBn nanoparticles represent a promising topical therapeutic strategy for psoriasis, effectively addressing multiple pathological aspects of the disease.
- The developed nanoparticle-gel formulation offers enhanced skin penetration and retention, paving the way for advanced psoriasis management.

