Polymeric films enable spatial and temporal control of drug release, improving therapeutic efficacy while reducing systemic side effects. While most studies focus on polymer blends, copolymer design, or chemical modification, this work investigates how geometry alone regulates degradation and drug release in micropatterned films. To this end, we exploit the μMESH platform, a dual-compartmentalized film composed of regularly patterned poly(lactic-co-glycolic acid) (PLGA) microfilaments arranged to form square openings deposited over a poly(vinyl alcohol) (PVA) microlayer. Four μMESH films with square openings of 5, 10, 20, and 50 μm were fabricated, along with a conventional unpatterned, solid PLGA film (FLAT). These films exhibited different surface area-to-volume ratios (Sa/V), ranging from 0.40 μm-1 (FLAT) to 1.02 μm-1 (μMESH with 20 μm openings). After extensive microscopy characterizations, PLGA mass loss (erosion) and molecular weight reduction (degradation) were evaluated for each film over several weeks in different media. Erosion and degradation rates strongly correlated with Sa/V (r = 0.99 and r = 0.92, respectively), with higher Sa/V resulting in slower mass loss and molecular weight decay. Electron microscopy analyses confirmed prolonged structural retention in high Sa/V films, with the μMESH exhibiting 20 μm openings preserving its architecture for at least 60 days, whereas lower Sa/V films (FLAT) showed heterogeneous degradation as early as 14 days. These observations were qualitatively confirmed by in vivo studies. From a pharmacological perspective, docetaxel-loaded films exhibited biphasic release profiles dominated by diffusion, with cumulative drug release increasing with Sa/V (r = 0.97). Overall, these findings demonstrate that the degradation, erosion, and drug release kinetics of PLGA films can be precisely tuned through geometry alone, providing a robust strategy for controlling the performance of implantable polymeric films.
Overcoming tumor heterogeneity, immunosuppression, and poor drug penetration remains a major challenge in treating glioblastoma (GBM). Here, we introduce a localized immuno-chemotherapy that combines the cytotoxic activity of docetaxel (DTXL) with the blockade of the 'do not eat me' signal via an anti-CD47 antibody (aCD47). Together, these agents act as a two-step immune-priming system, in which DTXL kills the tumor cells and exposes tumor antigens, while aCD47 amplifies this response by enabling macrophage-mediated clearance of the remaining tumor cells. To synchronize these mechanisms, both agents were co-delivered using μMESH, a pliable microstructured film placed directly over unresected tumors to enable precise, sustained local delivery. In syngeneic 'cold' GBM models, aCD47 or DTXL monotherapies modestly extended survival, whereas their combined delivery through μMESH reprogrammed the tumor microenvironment, enhanced T-cell recruitment, and generated a robust synergistic anti-tumor response. This treatment more than doubled median survival, with 40% of mice surviving beyond six months. These findings demonstrate that localized immuno-chemotherapy integrating DTXL and aCD47 can overcome immune resistance in unresected GBM, with μMESH serving as an effective platform for precise and sustained drug delivery.
Polymeric implants for local drug delivery offer significant advantages for treating various medical conditions by enabling the temporal and spatial control of drug release, improving efficacy, and reducing systemic side effects. In this context, μMESH, a 20 μm thin, dual-compartmentalized film comprising a poly(lactic-co-glycolic acid) (PLGA) micronetwork intercalated with a polyvinyl alcohol (PVA) microlayer, represents an interesting opportunity as its geometry can be systematically and accurately micropatterned during the fabrication process, enabling the systematic analysis of the effect of geometry on biodegradation rates mechanisms. In this study, four different μMESH films were realized with different surface area-to-volume ratios (Sa/V), ranging from 0.67 to 1.7 μm-1. After characterizing the μMESH geometry via fluorescent and scanning electron microscopy, biodegradations studies were performed up to 60 days in different media to assess the mass loss of PLGA, the reduction in PLGA molecular weight, and the formation of macroscopic defects - pores, holes and crack - within the PLGA micronetwork. By comparing the four μMESH films among themselves and to a flat, continuous PLGA slab (FLAT), it was confirmed the importance of the surface-to-volume ratio and demonstrated that μMESH with higher Sa/V ratios exhibited slower degradation rates compared to FLAT. Scanning electron microscopy images of the PLGA micronetworks revealed morphological changes indicative of bulk erosion, including surface roughening and pore formation, in FLAT and μMESH configurations with low Sa/V ratios. These findings confirm that film micropatterning significantly influences degradation kinetics. ### Competing Interest Statement The authors have declared no competing interest.
AbstractThe question of whether material stiffness enhances cell adhesion and clustering is still open to debate. Results from the literature are seemingly contradictory, with some reports illustrating that adhesion increases with surface stiffness and others suggesting that the performance of a system of cells is curbed by high values of elasticity. To address the role of elasticity as a regulator in neuronal cell adhesion and clustering, we investigated the topological characteristics of networks of neurons on polydimethylsiloxane (PDMS) surfaces - with values of elasticity (E) varying in the 0.55–2.65 MPa range. Results illustrate that, as elasticity increases, the number of neurons adhering on the surface decreases. Notably, the small-world coefficient – a topological measure of networks – also decreases. Numerical simulations and functional multi-calcium imaging experiments further indicated that the activity of neuronal cells on soft surfaces improves for decreasing E. Experimental findings are supported by a mathematical model, that explains adhesion and clustering of cells on soft materials as a function of few parameters - including the Young’s modulus and roughness of the material. Overall, results indicate that – in the considered elasticity interval – increasing the compliance of a material improves adhesion, improves clustering, and enhances communication of neurons.
Abstract High-grade gliomas have poor prognoses with limited treatment options, typically maximal safe resection and adjuvant radiochemotherapy. Novel therapies often face challenges due to low brain penetrance and poor bioavailability. To address these issues, a conformable, compartmentalized polymeric implant called microMESH has been developed. microMESH provides localized, sustained release of drugs, small inhibitors, antibodies, and nanomedicines, enabling novel therapeutic combinations. When applied to the tumor margins, microMESH adheres to the tissue, releasing its therapeutic cargo over weeks and reducing systemic toxicity. Its biocompatibility, cytotoxicity, and anti-tumor efficacy were tested on murine cancer cells (CT-2A) and orthotopic glioblastoma syngeneic models. Exposing primary bone marrow-derived monocytes (BMDM) to CT-2A conditioned medium increased the expression of anti-inflammatory cytokines (IL-10 and IL-4) by 2 times without significantly affecting the pro-inflammatory cytokines (TNF-α, IL-1β, and IL-6), indicating that CT-2A cells tend to establish an immunosuppressive ‘cold’ tumor microenvironment. Next, the co-incubation of CT-2A cells with BMDM followed by the administration of the immune checkpoint inhibitor aCD47 resulted in a cancer cell viability drop by 50% already at 50 μg/ml aCD47 after 1 day. Additionally, pre-treatment with docetaxel (DTXL) further decreased cell viability, suggesting a synergism between aCD47 and the chemotherapeutic drug. Flow cytometry showed that 50 nM DTXL at 3 days post-incubation was responsible for a strong translocation of the ‘immunogenic dell death’ protein calreticulin on the cell membrane, potentially explaining the synergism. Over 2 months, the intracranially deployed microMESH biodegraded without inducing any toxic effect. In orthotopic CT-2A tumors, aCD47/DTXL–microMESH (0.75 mg/kg, single intracranial application) showed a 40-day survival compared to 22 days for iv DTXL (3 mg/kg qod), 24 days for ip aCD47 (5 mg/kg qod), and 18 days for untreated mice. microMESH helped identify and enabled novel combination therapies directly at the tumor bed, demonstrating superior efficacy over systemic therapies.
Polymers are extensively used for the realization of drug delivery systems across multiple scales, from nanomedicines to microparticles and macroscopic implantable devices, for their favorable biodegradation profiles and tunable physicochemical features. The accurate quantification of the polymer content is key to finely controlling drug loading and release and ensuring reproducibility, yet it continues to be a major challenge in the design and development of delivery systems. In this study, we introduce a novel protocol based on the PULCON technique to quantify, with a routine NMR spectroscopy analysis, the precise concentration of polymers in various delivery systems. Specifically, the PULCON protocol is applied to characterize the physicochemical and pharmaceutical properties of nanoparticles, microparticles, and implantable devices realized by combining three extensively used polymers, namely, poly(lactic-co-glycolic acid) (PLGA), poly(vinyl alcohol) (PVA), and poly(ethylene glycol) (PEG). Without using internal calibration procedures, in a single step, the PULCON protocol precisely quantifies the concentration of each polymer and the drug content. This approach can be readily implemented on standard NMR spectrometers, enabling accurate characterization of drug delivery systems and facilitating their effective development.
Modest tissue penetrance, nonuniform distribution, and suboptimal release of drugs limit the potential of intracranial therapies against glioblastoma. Here, a conformable polymeric implant, μMESH, is realized by intercalating a micronetwork of 3 × 5 μm poly(lactic-co-glycolic acid) (PLGA) edges over arrays of 20 × 20 μm polyvinyl alcohol (PVA) pillars for the sustained delivery of potent chemotherapeutic molecules, docetaxel (DTXL) and paclitaxel (PTXL). Four different μMESH configurations were engineered by encapsulating DTXL or PTXL within the PLGA micronetwork and nanoformulated DTXL (nanoDTXL) or PTXL (nanoPTXL) within the PVA microlayer. All four μMESH configurations provided sustained drug release for at least 150 days. However, while a burst release of up to 80% of nanoPTXL/nanoDTXL was documented within the first 4 days, molecular DTXL and PTXL were released more slowly from μMESH. Upon incubation with U87-MG cell spheroids, DTXL-μMESH was associated with the lowest lethal drug dose, followed by nanoDTXL-μMESH, PTXL-μMESH, and nanoPTXL-μMESH. In orthotopic models of glioblastoma, μMESH was peritumorally deposited at 15 days post-cell inoculation and tumor proliferation was monitored via bioluminescence imaging. The overall animal survival increased from ∼30 days of the untreated controls to 75 days for nanoPTXL-μMESH and 90 days for PTXL-μMESH. For the DTXL groups, the overall survival could not be defined as 80% and 60% of the animals treated with DTXL-μMESH and nanoDTXL-μMESH were still alive at 90 days, respectively. These results suggest that the sustained delivery of potent drugs properly encapsulated in conformable polymeric implants could halt the proliferation of aggressive brain tumors.
High-grade gliomas, like glioblastoma (GBM), continue to have a poor prognosis with therapeutic options limited to maximal safe resection and adjuvant radiochemotherapy. Effective treatment is hampered by the blood-brain barrier, limiting the intratumor permeation of systemically administered agents; and biological heterogeneity of malignant cells, requiring complex therapeutic regimens. A conformable, compartmentalized polymeric implant – microMESH – has been engineered to overcome these obstacles by realizing a localized, sustained release of drugs, small inhibitors, antibodies, and nanomedicines. In the present configuration, microMESH comprises a water-soluble polyvinyl alcohol microlayer, loaded with the immune checkpoint aCD47, intercalated with a microfabricated network of poly lactic-co-glycolic acid, carrying docetaxel (DTXL). Upon deposition over the tumor margins, microMESH adheres and conforms to the local tissue releasing thereof its therapeutic cargo for several weeks, circumventing possible systemic toxicity. Gel permeation chromatography, nuclear magnetic resonance spectroscopy, weight and pH variations were measured to assess the microMESH biodegradation over time. microMESH biocompatibility and cytotoxicity were assessed on cancer cell monolayers and spheroids. The preclinical performance of microMESH was evaluated in two syngeneic mouse models of high-grade gliomas obtained via the intracranial inoculation of murine cancer cells – CT-2A, cold tumor; GL261, hot tumor. Flow cytometry was used to map the immune component in the tumor and assess the expression of immune checkpoints. Bioluminescence imaging was used to monitor tumor proliferation longitudinally. microMESH biodegraded in ~2 months with no documented toxicity. Preliminary experiments with an aCD47/DTXL–microMESH applied over the unresected margins of an orthotopic CT-2A model documented a median overall survival of 33.5 days against 18 days for untreated mice, 22 days for intravenously injected DTXL, 24 days for intraperitoneally administered aCD47 (statistically not significant difference among the control groups). microMESH allowed the sustained delivery of complex combination therapies directly at the tumor bed demonstrating superior efficacy over systemic therapies.
The deposition of stem cells at sites of injury is a clinically relevant approach to facilitate tissue repair and angiogenesis. However, insufficient cell engraftment and survival require the engineering of novel scaffolds. Here, a regular network of microscopic poly(lactic-co-glycolic acid) (PLGA) filaments was investigated as a promising biodegradable scaffold for human Adipose-Derived Stem Cell (hADSC) tissue integration. Via soft lithography, three different microstructured fabrics were realized where 5 × 5 and 5 × 3 μm PLGA ‘warp’ and ‘weft’ filaments crossed perpendicularly with pitch distances of 5, 10 and 20 μm. After hADSC seeding, cell viability, actin cytoskeleton, spatial organization and the secretome were characterized and compared to conventional substrates, including collagen layers. On the PLGA fabric, hADSC re-assembled to form spheroidal-like structures, preserving cell viability and favoring a nonlinear actin organization. Moreover, the secretion of specific factors involved in angiogenesis, the remodeling of the extracellular matrix and stem cell homing was favored on the PLGA fabric as compared to that which occurred on conventional substrates. The paracrine activity of hADSC was microstructure-dependent, with 5 μm PLGA fabric enhancing the expression of factors involved in all three processes. Although more studies are needed, the proposed PLGA fabric would represent a promising alternative to conventional collagen substrates for stem cell implantation and angiogenesis induction.
Breast cancer cell colonization of the lungs is associated with a dismal prognosis as the distributed nature of the disease and poor permeability of the metastatic foci challenge the therapeutic efficacy of small molecules, antibodies, and nanomedicines. Taking advantage of the unique physiology of the pulmonary circulation, here, micro-combinatorial hydrogel particles (µCGP) are realized via soft lithographic techniques to enhance the specific delivery of a cocktail of cytotoxic nanoparticles to metastatic foci. By cross-linking short poly(ethylene glycol) (PEG) chains with erodible linkers within a shape-defining template, a deformable and biodegradable polymeric skeleton is realized and loaded with a variety of therapeutic and imaging agents, including docetaxel-nanoparticles. In a model of advanced breast cancer lung metastasis, µCGP amplified the colocalization of docetaxel-nanoparticles with pulmonary metastatic foci, prolonged the retention of chemotoxic molecules at the diseased site, suppressed lesion growth, and boosted survival beyond 20 weeks post nodule engraftment. The flexible design and modular architecture of µCGP would allow the efficient deployment of complex combination therapies in other vascular districts too, possibly addressing metastatic diseases of different origins.
Maximizing loading while modulating the release of therapeutic molecules from nanoparticles and implantable drug delivery systems is the key to successfully address deadly diseases like brain cancer. Here, four different conjugates of the potent chemotherapeutic molecule docetaxel (DTXL) were realized to optimize the pharmacological properties of 1,000 x 400 nm Discoidal Polymeric Nanoconstructs (DPNs). DTXL was covalently linked to poly-(ethylene) glycol (PEG) chains of different molecular weights, namely 350, 550 and 1,000 Da, and oleic acid (OA). After extensive physico-chemical and pharmacological characterizations, the conjugate PEG(550)-DTXL showed an optimal compromise between loading and sustained release out of DPNs, as opposed to the insufficient loading of PEG(1000)-DTXL and PEG(350)-DTXL and the excessively slow release of OA-DTXL. Not surprisingly, viability tests conducted on U87-MG cells showed a delay in cytotoxic activity for the DTXL conjugates compared to free DTXL within the first 48 h. However, PEG(550)-DTXL returned an IC50 value of ~ 10 nM at 72 h, which is comparable to free DTXL. In mice bearing orthotopically implanted U87-MG cells, the intravenous administration of PEG(550)-DTXL loaded DPNs doubled the overall animal survival (52.5 days) as compared to temozolomide (27 days) and the untreated controls (32 days). Collectively, these results continue to demonstrate that the therapeutic efficacy of nanoparticles can be boosted by rationally designing drug conjugates-particle complexes for optimal loading and release profiles.
The storied history of controlled the release systems has evolved over time; from degradable drug-loaded sutures to monolithic zero-ordered release devices and nano-sized drug delivery formulations. Scientists have tuned the physico-chemical properties of these drug carriers to optimize their performance in biomedical/pharmaceutical applications. In particular, particle drug delivery systems at the micron size regime have been used since the 1980s. Recent advances in micro and nanofabrication techniques have enabled precise control of particle size and geometry–here we review the utility of microplates and discoidal polymeric particles for a range of pharmaceutical applications. Microplates are defined as micrometer scale polymeric local depot devices in cuboid form, while discoidal polymeric nanoconstructs are disk-shaped polymeric particles having a cross-sectional diameter in the micrometer range and a thickness in the hundreds of nanometer range. These versatile particles can be used to treat several pathologies such as cancer, inflammatory diseases and vascular diseases, by leveraging their size, shape, physical properties (e.g., stiffness), and component materials, to tune their functionality. This review highlights design and fabrication strategies for these particles, discusses their applications, and elaborates on emerging trends for their use in formulations. Graphical abstract
Taxane efficacy in triple negative breast cancer (TNBC) is limited by insufficient tumor accumulation and severe off-target effects. Nanomedicines offer a unique opportunity to enhance the anti-cancer potency of this drug. Here, 1,000 nm × 400 nm discoidal polymeric nanoconstructs (DPN) encapsulating docetaxel (DTXL) and the near infrared compound lipid-Cy5 were engineered. DPN were obtained by filling multiple times cylindrical wells in a poly(vinyl alcohol) template with a polymer mixture comprising poly(lactic-co-glycolic acid) (PLGA) and poly(ethylene glycol) diacrylate (PEG-DA) chains together with therapeutic and imaging agents. The resulting “multi-passage” DPN exhibited higher DTXL loading, lipid-Cy5 stability, and stiffness as compared to the conventional “single-passage” approach. Confocal microscopy confirmed that DTXL-DPN were not taken up by MDA-MB-231 cells but would rather sit next to the cell membrane and slowly release DTXL thereof. Empty DPN had no toxicity on TNBC cells, whereas DTXL-DPN presented a cytotoxic potential comparable to free DTXL (IC 50 = 2.6 nM ± 1.0 nM vs. 7.0 nM ± 1.09 nM at 72 h). In orthotopic murine models, DPN accumulated in TNBC more efficiently than free-DTXL. With only 2 mg/kg DTXL, intravenously administered every 2 days for a total of 13 treatments, DTXL-DPN induced tumor regression and were associated to an overall 80% survival rate as opposed to a 30% survival rate for free-DTXL, at 120 days. All untreated mice succumbed before 90 days. Collectively, this data demonstrates that vascular confined multi-passage DPN, biomimicking the behavior of circulating platelets, can efficiently deliver chemotherapeutic molecules to malignant tissues and effectively treat orthotopic TNBC at minimal taxane doses.
Type-1 diabetes (T1DM) is a chronic metabolic disorder resulting from the autoimmune destruction of β cells. The current standard of care requires multiple, daily injections of insulin and accurate monitoring of blood glucose levels (BGLs); in some cases, this results in diminished patient compliance and increased risk of hypoglycemia. Herein, we engineered hierarchically structured particles comprising a poly(lactic-co-glycolic) acid (PLGA) prismatic matrix, with a 20 × 20 μm base, encapsulating 200 nm insulin granules. Five configurations of these insulin-microPlates (INS-μPLs) were realized with different heights (5, 10, and 20 μm) and PLGA contents (10, 40, and, 60 mg). After detailed physicochemical and biopharmacological characterizations, the tissue-compliant 10H INS-μPL, realized with 10 mg of PLGA, presented the most effective release profile with ∼50% of the loaded insulin delivered at 4 weeks. In diabetic mice, a single 10H INS-μPL intraperitoneal deposition reduced BGLs to that of healthy mice within 1 h post-implantation (167.4 ± 49.0 vs 140.0 ± 9.2 mg/dL, respectively) and supported normoglycemic conditions for about 2 weeks. Furthermore, following the glucose challenge, diabetic mice implanted with 10H INS-μPL successfully regained glycemic control with a significant reduction in AUC0-120min (799.9 ± 134.83 vs 2234.60 ± 82.72 mg/dL) and increased insulin levels at 7 days post-implantation (1.14 ± 0.11 vs 0.38 ± 0.02 ng/mL), as compared to untreated diabetic mice. Collectively, these results demonstrate that INS-μPLs are a promising platform for the treatment of T1DM to be further optimized with the integration of smart glucose sensors.
Osteoarthritis (OA) is treated with the intra-articular injection of steroids such as dexamethasone (DEX) to provide short-term pain management. However, DEX treatment suffers from rapid joint clearance. Here, 20 × 10 μm, shape-defined poly(d,l-lactide-co-glycolide)acid microPlates (μPLs) are created and intra-articularly deposited for the sustained release of DEX. Under confined conditions, DEX release is projected to persist for several months, with only ∼20% released in the first month. In a highly rigorous murine knee overload injury model (post-traumatic osteoarthritis), a single intra-articular injection of Cy5-μPLs is detected in the cartilage surface, infrapatellar fat pad/synovium, joint capsule, and posterior joint space up to 30 days. One intra-articular injection of DEX-μPL (1 mg kg–1) decreased the expression of interleukin (IL)-1β, tumor necrosis factor (TNF)-α, IL-6, and matrix metalloproteinase (MMP)-13 by approximately half compared to free DEX at 4 weeks post-treatment. DEX-μPL also reduced load-induced histological changes in the articular cartilage and synovial tissues relative to saline or free DEX. In sum, the μPLs provide sustained drug release along with the capability to precisely control particle geometry and mechanical properties, yielding long-lasting benefits in overload-induced OA. This work motivates further study and development of particles that provide combined pharmacological and mechanical benefits.
The majority of intravenously administered molecular formulations cannot reach their maximum efficacy due to their poor stability in the circulation and their consequent short half-life. Curcumin has been shown to modulate the expression of a large number of proteins involved in tumor cell proliferation, adhesion, and migration. The in vitro results were further translated in vivo in a non-orthotopic model of brain tumor. The platforms described have been used for the treatment and imaging of solid tumors by exploiting the hyper-permeable tumor blood vessels. The enhanced permeation and retention effect, has guided the design of blood-borne spherical nanoparticles for many years. While spherical nanoparticles are synthesized through a bottom-up approach, consisting in the self-assembly of all the components or emulsion polymerization techniques. The processes by which macrophages internalize objects are many and include phagocytosis, endocytosis, and micropinocytosis.
The poor transport of molecular and nanoscale agents through the blood–brain barrier together with tumour heterogeneity contribute to the dismal prognosis in patients with glioblastoma multiforme. Here, a biodegradable implant (μMESH) is engineered in the form of a micrometre-sized poly(lactic-co-glycolic acid) mesh laid over a water-soluble poly(vinyl alcohol) layer. Upon poly(vinyl alcohol) dissolution, the flexible poly(lactic-co-glycolic acid) mesh conforms to the resected tumour cavity as docetaxel-loaded nanomedicines and diclofenac molecules are continuously and directly released into the adjacent tumour bed. In orthotopic brain cancer models, generated with a conventional, reference cell line and patient-derived cells, a single μMESH application, carrying 0.75 mg kg −1 of docetaxel and diclofenac, abrogates disease recurrence up to eight months after tumour resection, with no appreciable adverse effects. Without tumour resection, the μMESH increases the median overall survival (∼30 d) as compared with the one-time intracranial deposition of docetaxel-loaded nanomedicines (15 d) or 10 cycles of systemically administered temozolomide (12 d). The μMESH modular structure, for the independent coloading of different molecules and nanomedicines, together with its mechanical flexibility, can be exploited to treat a variety of cancers, realizing patient-specific dosing and interventions.
Since the launch of the Alliance for Nanotechnology in Cancer by the National Cancer Institute in late 2004, several similar initiatives have been promoted all over the globe with the intention of advancing the diagnosis, treatment and prevention of cancer in the wake of nanoscience and nanotechnology. All this has encouraged scientists with diverse backgrounds to team up with one another, learn from each other, and generate new knowledge at the interface between engineering, physics, chemistry and biomedical sciences. Importantly, this new knowledge has been wisely channeled towards the development of novel diagnostic, imaging and therapeutic nanosystems, many of which are currently at different stages of clinical development. This roadmap collects eight brief articles elaborating on the interaction of nanomedicines with human biology; the biomedical and clinical applications of nanomedicines; and the importance of patient stratification in the development of future nanomedicines. The first article reports on the role of geometry and mechanical properties in nanomedicine rational design; the second articulates on the interaction of nanomedicines with cells of the immune system; and the third deals with exploiting endogenous molecules, such as albumin, to carry therapeutic agents. The second group of articles highlights the successful application of nanomedicines in the treatment of cancer with the optimal delivery of nucleic acids, diabetes with the sustained and controlled release of insulin, stroke by using thrombolytic particles, and atherosclerosis with the development of targeted nanoparticles. Finally, the last contribution comments on how nanomedicine and theranostics could play a pivotal role in the development of personalized medicines. As this roadmap cannot cover the massive extent of development of nanomedicine over the past 15 years, only a few major achievements are highlighted as the field progressively matures from the initial hype to the consolidation phase.
Islet transplantation is a promising approach to enable type 1 diabetic patients to attain glycemic control independent of insulin injections. However, up to 60% of islets are lost immediately following transplantation. To improve this outcome, islets can be transplanted within bioscaffolds, however, synthetic bioscaffolds induce an intense inflammatory reaction which can have detrimental effects on islet function and survival. In the present study, we first improved the biocompatibility of polydimethylsiloxane (PDMS) bioscaffolds by coating them with collagen. To reduce the inflammatory response to PDMS bioscaffolds, we then enriched the bioscaffolds with dexamethasone-loaded microplates (DEX-μScaffolds). These DEX-microplates have the ability to release DEX in a sustained manner over 7 weeks within a therapeutic range that does not affect the glucose responsiveness of the islets but which minimizes inflammation in the surrounding microenvironment. The bioscaffold showed excellent mechanical properties that enabled it to resist pore collapse thereby helping to facilitate islet seeding and its handling for implantation, and subsequent engraftment, within the epididymal fat pad (EFP). Following the transplantation of islets into the EFP of diabetic mice using DEX-μScaffolds there was a return in basal blood glucose to normal values by day 4, with normoglycemia maintained for 30 d. Furthermore, these animals demonstrated a normal dynamic response to glucose challenges with histological evidence showing reduced pro-inflammatory cytokines and fibrotic tissue surrounding DEX-μScaffolds at the transplantation site. In contrast, diabetic animals transplanted with either islets alone or islets in bioscaffolds without DEX microplates were not able to regain glycemic control during basal conditions with overall poor islet function. Taken together, our data show that coating PDMS bioscaffolds with collagen, and enriching them with DEX-microplates, significantly prolongs and enhances islet function and survival.
Over the years, nanoparticles, microparticles, implants of poly(D,l-lactide-co-glycolide) (PLGA) have been demonstrated for diverse biomedical applications. Yet, initial burst release and optimal modulation of the release profiles limit their clinical use. Here, shape-defined PLGA microPlates (μPLs) were realized for the sustained release of two anti-inflammatory molecules, the natural polyphenol curcumin (CURC) and the corticosteroid dexamethasone (DEX). Under the electron microscope, μPLs appeared as square prisms with an edge length of 20 μm. The top-down fabrication process allowed the authors to vary, readily and systematically, the μPL height from 5 to 10 μm and the PLGA mass from 1 to 5, 10 and 20 mg. 'Taller' particles realized with higher PLGA concentrations encapsulated more drug reaching on average values of about 150 pg/μPL, for both CURC and DEX. The μPL height and PLGA concentration had major effects on drug release, too. Under sink conditions, DEX release from tall μPLs at 1 h reduced from 50% to 10% and 2% for the 5, 10 and 20 mg PLGA configurations, respectively. Also, DEX was released more slowly from taller as compared to short μPLs. The opposite trend was observed for CURC, possibly for its lower hydrophobicity and molecular weight as compared to DEX. This was also confirmed by quantifying the free energy of translocation for the two drugs via molecular dynamics simulations. Finally, the anti-inflammatory activity of μPLs was tested in vitro on LPS-stimulated rat monocytes and in vivo on a murine model of UVB-induced skin burns. Both in vitro and in vivo, the expression of pro-inflammatory cytokines (IL-6, IL-1β, and TNF-α) was significantly reduced by the application of μPLs as compared to the free compounds. In vivo, one single topical deposition of CURC-μPLs outperformed multiple, free CURC applications. This work demonstrates that geometry and polymer density can be effectively used to modulate the pharmacological performance of microparticles and mitigate the initial burst release.