| Literature DB >> 34221446 |
Mingwei He1,2,3, Zainen Qin1,2, Xiaonan Liang3, Xixi He1,2,3, Bikang Zhu1,2, Zhenhui Lu1,2, Qingjun Wei3, Li Zheng1,2.
Abstract
Andrographolide (AG) has favorable anti-inflammatory and antioxidative capacity. However, it has low bioavailability due to high lipophilicity and can be easily cleared by the synovial fluid after intra-articular injection, leading to low therapeutic efficiency in osteoarthritis (OA). Herein, we designed a nano-sized pH-responsive drug delivery system (DDS) for OA treatment by using modified mesoporous silica nanoparticles (MSNs) with pH-responsive polyacrylic acid (PAA) for loading of AG to form AG@MSNs-PAA nanoplatform. The nanoparticles have uniform size (∼120 nm), high drug loading efficiency (22.38 ± 0.71%) and pH-responsive properties, beneficial to sustained release in OA environment. Compared with AG, AG@MSNs-PAA showed enhanced antiarthritic efficacy and chondro-protective capacity based on IL-1β-stimulated chondrocytes and anterior cruciate ligament transection-induced rat OA model, as demonstrated by lower expression of inflammatory factors and better prevention of proteoglycan loss. Therefore, the AG@MSNs-PAA nanoplatform may be developed as a promising OA-specific and on-demand DDS.Entities:
Keywords: Osteoarthritis; andrographolide; mesoporous silica nanoparticles; pH-response; polyacrylic acid
Year: 2021 PMID: 34221446 PMCID: PMC8242227 DOI: 10.1093/rb/rbab020
Source DB: PubMed Journal: Regen Biomater ISSN: 2056-3426
Primer sequences used in qRT-PCR experiments
| Gene | Forward primer | Reverse primer |
|---|---|---|
|
| 5′-GTCCTACAATGTCAGGGCCA-3′ | 5′-ACCCCTCTCTCCCTTGTCAC-3′ |
|
| 5′-GAATGGGAGCCAGCCTACAC-3′ | 5′-GAGAGGCAGAGGGACTTTCG-3′ |
|
| 5′-GGCTGTGTGCTCATCCTACC-3′ | 5′-TGGAAAGGTACTGAAGCCACC-3′ |
|
| 5′-GGACAAAGACTATCCCCGCC-3′ | 5′-GGCATGACTCTCACAATGCG-3′ |
|
| 5′-TCCAGTATGACTCTACCCACG-3′ | 5′-CACGACATACTCAGCACCAG-3′ |
Figure 1.Characterization of nanoparticles. (a) TEM images and size distribution (insets) of MSNs and MSNs-PAA (scale bar: 100 nm). (b) Zeta potential, (c) FT-IR spectra, and (d) XRD spectra of MSNs and MSNs-PAA. (e) Drug loading capacity and encapsulation efficiency of MSNs-PAA. (f) Cumulative drug release curve of AG@MSNs-PAA at pH 5.6 or 7.4 in vitro. Data were shown as mean ± SD (n = 3).
Figure 2.Effect of nanoparticles on cell viability. (a, b) Cytotoxicity of MSNs-PAA and AG@MSNs-PAA on chondrocytes. (c) Cell viability of IL-β1-induced chondrocytes that treated with AG, AG@MSNs, or AG@MSNs-PAA for 24 h (scale bar: 200 μm). Data were represented as mean ± SD (n = 3).
Figure 3.Chondro-protective effects of nanoparticles on IL-1β-induced chondrocytes. (a, b) qRT-PCR was performed to detect the expression levels of chondrogenic markers Col2α1 and Acan. (c) Quantification of GAG content. (d) Safranin O stained for GAG production (scale bar, 400 µm). Data were represented as the mean ± SD of three independent culture experiments (n = 3). #P < 0.05; ##P < 0.01; ***, ###P < 0.001.
Figure 4.AG@MSNs-PAA prevents IL-1β-induced inflammation in chondrocytes in vitro. (a, b) Relative mRNA levels of OA relative genes (Mmp3 and Mmp13). (c) MMP13 expression was analyzed by immunofluorescence staining (scale bar: 100 µm). Data were presented as the mean ± SD (n = 3). #P < 0.05; **, ##P < 0.01; ***, ###P < 0.001.
Figure 5.AG@MSNs-PAA attenuates osteophyte formation and cartilage erosion in vivo. (a) Macroscopic appearance of distal femur and tibial Plateau from rats after treatment for 4 and 8 weeks. (b, c) Macroscopic scores for macroscopic changes of articular cartilage from rats after treatment for 4 and 8 weeks. Data were represented as the mean ± SD (n = 5). #P < 0.05; **, ##P < 0.01; ***P < 0.001.
Figure 6.AG@MSNs-PAA prevents cartilage changes induced by ACLT in OA rats. (a, b) Cartilage was stained by hematoxylin and eosin (HE) and safranin O/fast green after treatment for 4 and 8 weeks (scale bar: 500 nm). (c, d) OARSI scores for histological changes of articular cartilage after treatment for 4 and 8 weeks. Data were represented as the mean ± SD (n = 5). **P < 0.01; ***,###P < 0.001.