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Keywords = biomimetic nanocarrier

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31 pages, 3903 KB  
Review
Bridging the “Valley of Death” in Antifungal Therapy: Next-Generation Biomimetic and Exosome-Inspired Nanocarriers for Invasive Candidiasis
by Bekir Mustafa Yoğurtçu and Ilknur Yilmaz
J. Fungi 2026, 12(7), 530; https://doi.org/10.3390/jof12070530 - 19 Jul 2026
Viewed by 189
Abstract
Invasive candidiasis, predominantly driven by multidrug-resistant Candida species and intractable biofilms, represents an escalating global health crisis with mortality rates rivaling major infectious diseases. The clinical efficacy of conventional antifungal agents—azoles, polyenes, and echinocandins—is severely compromised by poor tissue penetration, dose-limiting systemic toxicity, [...] Read more.
Invasive candidiasis, predominantly driven by multidrug-resistant Candida species and intractable biofilms, represents an escalating global health crisis with mortality rates rivaling major infectious diseases. The clinical efficacy of conventional antifungal agents—azoles, polyenes, and echinocandins—is severely compromised by poor tissue penetration, dose-limiting systemic toxicity, and the rapid evolution of complex resistance mechanisms. Here, we review the two-decade structural evolution of nanotechnological interventions designed to overcome these pharmacological and biological barriers. We systematically analyze advanced nanosystems, including lipid-based formulations, natural polymers, and biogenic metallic nanostructures, highlighting their capacity to penetrate the dense extracellular polymeric substance (EPS), combat potential fungal ‘nano-resistance’, and significantly reduce metabolically dormant persister cell populations. The literature search was performed using the electronic databases PubMed, Scopus, Web of Science, and Google Scholar. Publications indexed between 2015 and 2025 were primarily considered, while seminal studies published before 2015 were included when necessary to provide historical context and foundational knowledge. We place specific emphasis on next-generation biomimetic and exosome-inspired nanocarriers, which significantly reduce systemic host toxicity while maximizing targeted antifungal efficacy. In this context, the synergistic integration of smart nanocarriers to actively disassemble fungal resistance networks, such as the target of rapamycin (TOR) signaling pathway and sphingolipid biosynthesis. Finally, we outline a strategic roadmap to bridge the translational “Valley of Death”. By prioritizing manufacturing standardization, comprehensive long-term biosecurity profiling, and rationally designed biomimetic platforms, we propose an alternative way to outpace the evolutionary adaptations of fungal pathogenesis and translate these innovations into the clinic. Full article
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25 pages, 2646 KB  
Review
Macrophage Membrane-Coated Nanoparticles for Immunomodulation and Bone Regeneration: Emerging Applications in Oral and Dental Implant Therapy
by Sara Derhambakhsh, Tulio Fernandez-Medina, Elsa Antunes, Suchandan Sikder, Ernest Jennings and Catherine M. Miller
Biomimetics 2026, 11(7), 482; https://doi.org/10.3390/biomimetics11070482 - 10 Jul 2026
Viewed by 389
Abstract
Macrophage membrane-coated nanoparticles (MMNPs) are an emerging class of biomimetic nanoplatforms that combine the immune-regulatory functions of macrophages with the structural versatility of synthetic nanoparticles (NPs). By retaining key membrane proteins and receptors, MMNPs exhibit natural targeting capabilities, immune interactions, and inflammatory site [...] Read more.
Macrophage membrane-coated nanoparticles (MMNPs) are an emerging class of biomimetic nanoplatforms that combine the immune-regulatory functions of macrophages with the structural versatility of synthetic nanoparticles (NPs). By retaining key membrane proteins and receptors, MMNPs exhibit natural targeting capabilities, immune interactions, and inflammatory site homing, making them promising tools for immunomodulation and targeted therapy. This review summarizes macrophage biology relevant to immune regulation and discusses how nanoparticle core properties, including size, surface charge, composition, and mechanical characteristics, influence membrane coating efficiency, stability, and biological performance. Current fabrication and characterization strategies for MMNPs are also discussed. Particular emphasis is placed on the therapeutic applications of MMNPs in inflammatory disorders, tissue regeneration, and oral and dental implant-related applications. Recent studies demonstrate that MMNPs can modulate macrophage polarization, sequester pro-inflammatory cytokines, remodel the immune microenvironment, and promote tissue repair and bone regeneration, highlighting their potential to improve implant integration and reduce inflammation-associated implant failure. Despite these promising advances, challenges remain regarding large-scale manufacturing, membrane preservation, reproducibility, and long-term biosafety. Continued interdisciplinary research in nanotechnology, immunology, and biomaterials engineering is expected to accelerate the clinical translation of MMNPs for regenerative and immunomodulatory therapies. Full article
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31 pages, 2161 KB  
Review
Nanotechnological Strategies to Promote Skeletal Muscle Regeneration in Aging
by Flavia Carton and Manuela Malatesta
Int. J. Mol. Sci. 2026, 27(14), 6167; https://doi.org/10.3390/ijms27146167 - 10 Jul 2026
Viewed by 313
Abstract
During aging, skeletal muscle undergoes a decline in mass and strength. This condition, known as sarcopenia, involves many physiological and metabolic impairments, thus representing a healthcare, social, and economic burden. Various pharmacological and non-pharmacological approaches have been explored to counteract sarcopenia; however, no [...] Read more.
During aging, skeletal muscle undergoes a decline in mass and strength. This condition, known as sarcopenia, involves many physiological and metabolic impairments, thus representing a healthcare, social, and economic burden. Various pharmacological and non-pharmacological approaches have been explored to counteract sarcopenia; however, no definite treatment has so far been found. The present narrative review summarizes nanotechnology-based strategies designed to promote muscle preservation and functional recovery in aging. Synthetic organic or inorganic nanoconstructs and natural extracellular vesicles have been used as nanocarriers for drug delivery, have been active as intrinsic therapeutic agents, have been employed to build biomimetic nanoscaffolds to sustain muscle regeneration, or have been combined to form hybrid nanosystems with multiple therapeutic functions. These nanotools demonstrated promising results in vitro and in animal models, being able to counteract major factors responsible for sarcopenia, such as oxidative stress, inflammation, mitochondrial dysfunction, increased proteolysis, and impaired stem cell function. However, nanotools have mostly been tested on biological models far from the physiologically aged human muscle. Moreover, limitations still remain to be solved to make these nanotools suitable for regenerative medicine; in particular, the systemic administration requires nanoconstruct functionalization for skeletal muscle targeting, and proper clearance should be ensured to avoid toxicity and immunogenicity related to long-term use. Full article
(This article belongs to the Section Molecular Pathology, Diagnostics, and Therapeutics)
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34 pages, 433 KB  
Review
Navigating the Biological Landscape: Barriers to Effective Theranostic Development and Delivery
by Shalini Sharma, Dravin Pratap Singh, Pallavi Agrawal, Ashutosh Singh and Rishi K. Jaiswal
J. Nanotheranostics 2026, 7(3), 15; https://doi.org/10.3390/jnt7030015 - 23 Jun 2026
Viewed by 433
Abstract
Theranostics is a novel approach that integrates diagnostic and therapeutic efficacy on a single platform, holding great promise for precision medicine by enabling real-time monitoring of disease progression and therapeutic response. Despite significant advances, the successful development and delivery of theranostic systems are [...] Read more.
Theranostics is a novel approach that integrates diagnostic and therapeutic efficacy on a single platform, holding great promise for precision medicine by enabling real-time monitoring of disease progression and therapeutic response. Despite significant advances, the successful development and delivery of theranostic systems are critically limited by multiple biological barriers present at systemic, tissue, cellular, anatomical, and immunological levels. These barriers restrict bioavailability, target accessibility, and therapeutic efficacy, while often increasing off-target accumulation and adverse effects. This review provides a comprehensive overview of the major biological barriers encountered in theranostic development, including physiological barriers such as plasma protein binding, renal clearance, and hepatic metabolism; anatomical barriers like endothelial linings, the blood–brain barrier (BBB), and the tumor microenvironment; cellular barriers involving membrane permeability, intracellular trafficking, and endo-lysosomal entrapment; and immunological barriers such as immune recognition, inflammatory responses, and complement activation. Special emphasis is placed on the BBB, highlighting its structural complexity, transport mechanisms, and strategies such as molecular Trojan-horse technology, receptor-mediated and adsorptive-mediated transcytosis, and nanocarrier-based approaches to enhance central nervous system delivery. The review further discusses targeted delivery challenges, including receptor heterogeneity and multidrug resistance, and critically evaluates current strategies to overcome these barriers through surface functionalization, stimuli-responsive systems, biomimetic carriers, and controlled-release mechanisms. Finally, recent advances, clinical challenges, and future perspectives—including personalized theranostics, artificial intelligence—assisted design, and next-generation barrier-penetrating systems—are explored. Overall, this review aims to provide a structured understanding of biological barriers in theranostics and highlight innovative approaches to improve their translational potential. Full article
22 pages, 1859 KB  
Review
Tools for Antigen Delivery: From Traditional Nanocarriers and Biomimetic Platforms to Emerging Physical, Bioengineered and Computational Approaches
by Liying Sun, Yujiao Miao, Deyun Jiang and Chao Liu
Vaccines 2026, 14(6), 516; https://doi.org/10.3390/vaccines14060516 - 9 Jun 2026
Cited by 1 | Viewed by 549
Abstract
The magnitude and quality of adaptive immune responses are fundamentally influenced by the efficiency of antigen presentation. Traditional vaccine platforms, such as live–attenuated or inactivated pathogens, although immunogenic, often present safety concerns. Conversely, subunit vaccines, despite being safer, generally exhibit poor immunogenicity due [...] Read more.
The magnitude and quality of adaptive immune responses are fundamentally influenced by the efficiency of antigen presentation. Traditional vaccine platforms, such as live–attenuated or inactivated pathogens, although immunogenic, often present safety concerns. Conversely, subunit vaccines, despite being safer, generally exhibit poor immunogenicity due to inadequate delivery of antigens to professional antigen–presenting cells (APCs). To address this issue, the development of innovative delivery systems has become a pivotal strategy to overcome significant biological barriers, including extracellular antigen degradation, suboptimal lymph node targeting, and inefficient cross–presentation necessary for CD8+ T cell activation. This review systematically explores recent advancements in delivery technologies aimed at enhancing antigen presentation, encompassing rationally engineered nanocarriers and sophisticated biomimetic platforms. We first examine how nanoparticle properties like size, surface charge, and ligand density affect intracellular trafficking and the transition from MHC–II to MHC–I cross–presentation. Then, we explore bioinspired systems such as extracellular vesicles, virus–like particles, and cell–membrane–coated nanoparticles that utilize natural biological traits for enhanced targeting and immune modulation. Additionally, we review new physical delivery methods like microneedle arrays and in situ electroporation for direct, minimally invasive antigen delivery to dendritic cells. Lastly, we discuss the potential of these platforms in personalized cancer vaccines and combination immunotherapies. By combining insights from materials science, immunology, and bioengineering, these next–generation delivery tools could enhance antigen presentation and transform precision vaccination and immune intervention. Full article
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39 pages, 13117 KB  
Review
Biomimetic Targeted Drug Delivery for Liver Failure in Abdominal Sepsis: Focus on Autologous Erythrocyte Ghosts
by Kulzhan Berikkhanova, Isah Inuwa, Erlan Taigulov, Saken Kozhakhmetov, Nurzhan Bikhanov, Ardak Omarbekov, Gulsara Berikkhanova, Yessenhan Sultan, Abdulrahman Garba Jibo, Saniya Abdrakhmanova, Zhannat Zhakiyanova, Gulyash Tanysheva and Zhaxybay Zhumadilov
Int. J. Mol. Sci. 2026, 27(11), 4978; https://doi.org/10.3390/ijms27114978 - 30 May 2026
Viewed by 1239
Abstract
Sepsis-induced liver failure remains a serious and often under-recognized complication of abdominal sepsis. Clinical reports suggest that liver dysfunction develops in a substantial proportion of these patients, and once failure ensues, mortality rises sharply. Despite progress in antimicrobial therapy and critical care support, [...] Read more.
Sepsis-induced liver failure remains a serious and often under-recognized complication of abdominal sepsis. Clinical reports suggest that liver dysfunction develops in a substantial proportion of these patients, and once failure ensues, mortality rises sharply. Despite progress in antimicrobial therapy and critical care support, there is still no therapy that directly halts or reliably reverses septic liver injury. Systemic drug administration frequently underperforms in this setting. Hepatic drug accumulation becomes unpredictable, pharmacokinetics shift, and immune dysregulation further complicates therapeutic control. Nanotechnology-based delivery systems have attempted to address these shortcomings by improving drug stability and circulation time. Yet their behavior under septic conditions remains inconsistent. This inconsistency may reflect a deeper issue: most carriers are engineered under relatively stable physiological assumptions that do not hold during systemic inflammation. Biomimetic platforms, particularly those derived from erythrocyte membranes, offer a different conceptual entry point. Rather than merely evading immune recognition, erythrocyte-based systems interact naturally with hepatic clearance pathways. During sepsis, erythrocyte turnover appears to accelerate, and macrophage-mediated clearance in the liver intensifies. This shift, while pathologic, may present a therapeutic opportunity. In this review, we examine current liver-targeted delivery strategies for sepsis-induced liver failure and critically assess the underexplored role of erythrocyte ghost-based systems. We discuss how sepsis-specific pathophysiological changes reshape carrier biodistribution, identify translational constraints, and propose design considerations for inflammation-adaptive biomimetic platforms. By reconsidering hepatic clearance not solely as a pharmacokinetic barrier but as a potential delivery route, we outline a disease-aligned approach to nanomedicine design in septic organ failure. Full article
(This article belongs to the Section Molecular Pathology, Diagnostics, and Therapeutics)
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26 pages, 1681 KB  
Review
Biomolecular Interfaces in Targeted Nano-Drug Delivery: Molecular Recognition, Signaling Modulation, and Translational Pathways
by Zeyu Wang, Lixia Dai, Zhen Zhu and Xiaofei Shang
Biomolecules 2026, 16(5), 722; https://doi.org/10.3390/biom16050722 - 14 May 2026
Viewed by 607
Abstract
Traditional pharmacotherapy is often constrained by suboptimal bioavailability and systemic toxicity. Biomolecularly inspired nano-drug delivery systems (nano-DDS) have emerged as precise platforms to overcome these barriers by orchestrating molecular interactions at the bio-nano interface. This review systematically evaluates the molecular recognition mechanisms and [...] Read more.
Traditional pharmacotherapy is often constrained by suboptimal bioavailability and systemic toxicity. Biomolecularly inspired nano-drug delivery systems (nano-DDS) have emerged as precise platforms to overcome these barriers by orchestrating molecular interactions at the bio-nano interface. This review systematically evaluates the molecular recognition mechanisms and biochemical principles governing nano-DDS performance. We systematically evaluate how passive targeting relies on the EPR effect—dictated by the nanocarrier’s physicochemical properties—and how active targeting exploits ligand-receptor affinity to enhance cellular uptake. Special emphasis is placed on bioresponsive strategies that utilize pathological cues—such as pH gradients, redox potential, and enzymatic activity—for intelligent, on-demand drug release. Furthermore, we discuss structure-function relationships in lipid, polymeric, and biologically derived systems, highlighting their roles in modulating therapeutic signaling in oncology and inflammatory diseases. Finally, translational hurdles and emerging AI-driven molecular design strategies are critically examined. Full article
(This article belongs to the Special Issue Advances in Nano-Based Drug Delivery: Unveiling the Next Frontier)
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46 pages, 1236 KB  
Review
Evolving Landscape of Glioblastoma Research: Integrating Therapeutic Advances and Diagnostic Frontiers
by Nirupama A. Sabnis, Luke C. Cooksey, Hareesh Jayakumar, Mariana Moguel Mendez, Ezek Mathew, Roland Max Petty, Amalendu Ranjan, Luis Colon-Perez, Rob Dickerman, Porunelloor A. Mathew and Bruce A. Bunnell
Brain Sci. 2026, 16(5), 487; https://doi.org/10.3390/brainsci16050487 - 30 Apr 2026
Cited by 1 | Viewed by 1635
Abstract
Glioblastoma (GB) remains the most aggressive primary brain malignancy, with the Stupp regimen persisting as the standard of care for nearly two decades despite poor survival outcomes. This review was synthesized by extensively reviewing and analyzing the literature from PubMed, Scopus, and Web [...] Read more.
Glioblastoma (GB) remains the most aggressive primary brain malignancy, with the Stupp regimen persisting as the standard of care for nearly two decades despite poor survival outcomes. This review was synthesized by extensively reviewing and analyzing the literature from PubMed, Scopus, and Web of Science to evaluate the emerging promising therapeutic and diagnostic strategies for combating GB. Results indicate significant progress in molecularly targeted therapies, biomimetic nanocarriers, and advanced radiotherapy. While immunotherapeutic approaches, such as checkpoint inhibitors and vaccines, show variable clinical success, the integration of bioinformatics and machine learning has significantly enhanced treatment response prediction. Furthermore, advances in radiomics and molecular imaging have improved the differentiation between true tumor progression and pseudoprogression, potentially reducing invasive diagnostic requirements. Additionally, other emerging and investigational adjuvant therapeutic approaches have shown promise. We conclude that, while multimodal strategies integrating molecular and computational approaches offer a path toward personalized GB management, significant barriers—namely tumor heterogeneity and the blood–brain barrier—persist. Future research must prioritize precision-based combinatorial models to successfully translate these preclinical advancements into improved clinical outcomes for patients. Full article
(This article belongs to the Topic Advances in High Grade Glioma Research)
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32 pages, 14136 KB  
Review
Advances of Cell Membrane-Coated Nanotechnology and Membrane Vesicles in Intestinal Targeted Drug Delivery Systems
by Rou Tang, Fujun Zeng, Chengzhen Lyu, Jianyekai Tuerheng, Ziqi Guo, Kun He and Dong Wu
Pharmaceutics 2026, 18(5), 534; https://doi.org/10.3390/pharmaceutics18050534 - 27 Apr 2026
Cited by 1 | Viewed by 1248
Abstract
Although nanomedicine has enabled significant advances in drug delivery, the clinical translation of conventional synthetic nanocarriers is limited by immune clearance, non-specific biodistribution, and gastrointestinal instability. This poses major challenges for therapy targeting the intestines. Cell membrane-coated nanotechnology (CMCT) and membrane vesicle-based systems [...] Read more.
Although nanomedicine has enabled significant advances in drug delivery, the clinical translation of conventional synthetic nanocarriers is limited by immune clearance, non-specific biodistribution, and gastrointestinal instability. This poses major challenges for therapy targeting the intestines. Cell membrane-coated nanotechnology (CMCT) and membrane vesicle-based systems have emerged as biomimetic platforms integrating synthetic nanomaterials with naturally derived biological interfaces. These biohybrid systems inherit biological functions originating from cells, including immune evasion, prolonged circulation, lesion homing, and microenvironment-responsive interactions, through the direct transfer of intact membrane components. This review summarizes recent advances in CMCT and membrane vesicle-based strategies for intestinal drug delivery. It covers fabrication methodologies, programmable manufacturing approaches, and functional regulation enabled by diverse membrane sources and hybrid engineering designs. Applications in inflammatory bowel disease, colorectal cancer, and intestinal infections are highlighted, emphasizing key therapeutic mechanisms, such as targeting inflammation, neutralizing toxins, modulating the immune system, and regulating the microbiome. We also discuss the major challenges of translation, such as preserving membrane and coating integrity, ensuring oral stability, achieving batch reproducibility, and ensuring biosafety. Overall, this review establishes a conceptual and engineering framework to guide the transition of membrane-based nanocarriers from passive biomimicry to adaptive, clinically translatable intestinal delivery systems. Full article
(This article belongs to the Special Issue Extracellular Vesicles for Targeted Delivery)
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30 pages, 1291 KB  
Review
Nanocarrier-Based Therapeutic Strategies in Myocardial Ischemia–Reperfusion Injury: A Systematic Review of Preclinical Evidence
by Michał Porada, Bartosz Pawełczak, Karolina Barańska-Pawełczak and Krzysztof Marciniec
Biomedicines 2026, 14(4), 921; https://doi.org/10.3390/biomedicines14040921 - 17 Apr 2026
Viewed by 910
Abstract
Background/Objectives: Myocardial ischemia–reperfusion injury (MIRI) remains an ever-growing threat in the field of cardiology, as it has become a major risk factor for unfavorable outcomes following reperfusion therapies. Oxidative stress and inflammation remain the key pathophysiological mechanisms underlying MIRI, and the presently [...] Read more.
Background/Objectives: Myocardial ischemia–reperfusion injury (MIRI) remains an ever-growing threat in the field of cardiology, as it has become a major risk factor for unfavorable outcomes following reperfusion therapies. Oxidative stress and inflammation remain the key pathophysiological mechanisms underlying MIRI, and the presently available treatments fail to prevent this process effectively. This systematic review aimed to summarize and critically assess the latest preclinical research (2020–2026) on nanocarrier-based interventions targeting oxidative stress in MIRI, highlighting the potential of the new nanostructures in cardioprotection. Methods: A total of 24 studies meeting the PRISMA criteria have been found through a literature search of PubMed, Embase, and Web of Science databases published between 2020 and 2026. The studies eligible for inclusion had focused on the efficacy of nanocarrier-based interventions in preclinical studies of MIRI. Results: Of the 24 included studies, all investigated nanocarrier-based interventions in preclinical models of MIRI. In vitro, ex vivo, and in vivo models were diverse, with most studies being a combination of both in vitro and in vivo models. Commonly studied were lipid-based nanocarriers, polymeric nanoparticles, and biomimetic nanocarriers. Across studies assessed for this review, treatments with nanocarriers were seen to suppress inflammatory and oxidative stress pathways, with a few studies showing a suppression of cardiomyocyte apoptosis. Cardiac function was restored as determined by echocardiography analyses or ex vivo models of the myocardium, thus validating that the nanocarrier-mediated therapies are effective against MIRI. Conclusions: The analyzed preclinical studies indicate that the described therapies could provide a promising basis for future clinical trials in the treatment of MIRI, provided their safety and efficacy are confirmed in clinical trials. Full article
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35 pages, 8177 KB  
Review
Nanomaterial-Based Therapeutic Delivery: Integrating Redox Biology, Genetic Engineering, and Imaging-Guided Treatment
by Dorota Bartusik-Aebisher, Daniel Roshan Justin Raj and David Aebisher
Antioxidants 2026, 15(4), 430; https://doi.org/10.3390/antiox15040430 - 30 Mar 2026
Cited by 2 | Viewed by 1298
Abstract
Nanomaterials are emerging versatile platforms for therapeutic delivery, as they offer precise control over drug, antioxidant, and genetic payload transport across biological barriers. Inorganic, organic, hybrid, and biomimetic systems are the major classes of nanomaterials, which all have different physicochemical properties such as [...] Read more.
Nanomaterials are emerging versatile platforms for therapeutic delivery, as they offer precise control over drug, antioxidant, and genetic payload transport across biological barriers. Inorganic, organic, hybrid, and biomimetic systems are the major classes of nanomaterials, which all have different physicochemical properties such as size, surface charge, and surface functionalization. These properties collectively influence stability, biodistribution, cellular uptake, and release kinetics. Engineering strategies are increasingly using stimuli-responsive designs that are triggered by pH, reactive oxygen species (ROS), and intracellular redox gradients to perform spatially and temporally controlled delivery. Antioxidant and redox-modulating nanocarriers are of great importance as they overcome the limited bioavailability and nonspecific activity of conventional antioxidants by improving stability, targeting oxidative microenvironments, and allowing for regulated release. Improvements in lipid, polymeric, and inorganic nanoplatforms have also developed gene delivery applications, including siRNA, mRNA, and CRISPR/Cas systems, to provide better cytosolic release and precise therapeutics. When diagnostic imaging is integrated with therapy through theranostic nanoparticles, real-time monitoring and personalized intervention are possible. Safety, scalable manufacturing, and regulatory alignment are some challenges that show the need for standardization and translational procedures to utilize the potential of theranostic nanomedicine. Full article
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18 pages, 1640 KB  
Review
Functionalized Biomaterials in the Investigation of the Effects of Fluid Shear Forces in the Immune Regulation of Cancer Progression and Metastasis
by Rayhaneh Afjei and Vassilios I. Sikavitsas
J. Funct. Biomater. 2026, 17(2), 81; https://doi.org/10.3390/jfb17020081 - 7 Feb 2026
Viewed by 1075
Abstract
As cancer mortality rates rise globally, malignancies have become the second leading cause of death. Recently, efforts have been made to understand the impact of the tumor microenvironment that involves fluid shear forces. Biomechanical stimulation, which uses shear stress to activate mechanosensitive ion [...] Read more.
As cancer mortality rates rise globally, malignancies have become the second leading cause of death. Recently, efforts have been made to understand the impact of the tumor microenvironment that involves fluid shear forces. Biomechanical stimulation, which uses shear stress to activate mechanosensitive ion channels, e.g., Piezo1, increases calcium influx into the intracellular space and activates T cells. Novel 3D cancer cultures with T cells have been proposed. Such models use cell/scaffold constructs to recapitulate interactions between cells and the extracellular matrix. In addition, flow perfusion bioreactors investigate the impact of fluid shear forces on immune and/or cancer cells. These bioreactors have biosensors that allow monitoring of immune cell activation. Furthermore, they provide a biomimetic environment for the study of the interaction of T cells and cancer cells. Hence, immune checkpoint inhibitors have demonstrated immunotherapeutic efficacy, but a single-target blockade has often proved insufficient. Co-delivery of CCL19 pDNA and the PD-1/PD-L1 interaction inhibitor BMS-1 using RGD-modified nanocarriers targeting tumor integrins enhanced local antitumor immunity. This review highlights recent insights into how fluid shear stress (FSS) regulates cancer progression and immune responses in three-dimensional in vitro models, with a focus on bioreactors and the surface modification of scaffold materials. Full article
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13 pages, 2822 KB  
Article
Genetically Engineered Biomimetic Nanovesicles Co-Deliveing a Checkpoint Inhibitor and Doxorubicin for Enhanced Cancer Chemo-Immunotherapy
by Yunying Xing, Xinyi Liu, Zhenkun Wang, Yingze Wang, Jing Zhang and Wenxiang Zhu
Pharmaceutics 2026, 18(2), 159; https://doi.org/10.3390/pharmaceutics18020159 - 26 Jan 2026
Viewed by 927
Abstract
Background/Objectives: Despite the clinical success of immune checkpoint blockade (ICB), its efficacy remains limited in immunologically “cold” tumors, primarily due to poor immunogenicity and an immunosuppressive tumor microenvironment (TME). Chemo-immunotherapy offers a potential strategy to enhance ICB response, yet its application is [...] Read more.
Background/Objectives: Despite the clinical success of immune checkpoint blockade (ICB), its efficacy remains limited in immunologically “cold” tumors, primarily due to poor immunogenicity and an immunosuppressive tumor microenvironment (TME). Chemo-immunotherapy offers a potential strategy to enhance ICB response, yet its application is often hindered by inadequate tumor-targeted delivery and systemic immunosuppressive side effects. Biomimetic nanotechnology represents a promising approach to overcoming these limitations by improving drug delivery and facilitating effective combination regimens. Methods: We developed a biomimetic nanosystem (NVs@DOX) through genetic engineering of cellular membranes and optimized nanoformulation techniques, enabling co-delivery of doxorubicin (DOX) and ICB agents. This design aims to maximize synergistic antitumor effects while minimizing adverse impacts. Results: In vitro studies demonstrated the potent cytotoxicity of NVs@DOX, including significant inhibition of cancer cell proliferation and complete suppression of colony formation. In a 4T1 murine breast cancer model, NVs@DOX treatment led to substantial tumor growth inhibition (approximately 72%) without notable body weight loss, underscoring a favorable safety profile alongside enhanced therapeutic efficacy. Conclusions: The NVs@DOX platform effectively integrates doxorubicin with ICB within a biomimetic nanocarrier, significantly improving chemo-immunotherapy outcomes. This strategy highlights the potential of genetically engineered cellular nanoparticles as a promising combinatorial approach for the treatment of breast cancer. Full article
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22 pages, 1744 KB  
Review
From Circulation to Regeneration: Blood Cell Membrane-Coated Nanoparticles as Drug Delivery Platform for Immune-Regenerative Therapy
by Yun-A Kim, Min Hee Lee, Hee Su Sohn and Han Young Kim
Pharmaceutics 2026, 18(1), 66; https://doi.org/10.3390/pharmaceutics18010066 - 4 Jan 2026
Cited by 9 | Viewed by 2219
Abstract
Cell membrane-coated nanoparticles represent a biomimetic drug delivery approach that integrates biological membrane functions with synthetic nanomaterials. Among the various membrane sources, those derived from blood cells such as red blood cells, platelets, and leukocytes offer distinctive advantages, including immune evasion, prolonged systemic [...] Read more.
Cell membrane-coated nanoparticles represent a biomimetic drug delivery approach that integrates biological membrane functions with synthetic nanomaterials. Among the various membrane sources, those derived from blood cells such as red blood cells, platelets, and leukocytes offer distinctive advantages, including immune evasion, prolonged systemic circulation, and selective tissue targeting. These properties collectively enable efficient and biocompatible delivery of therapeutic agents to diseased tissues, minimizing off-target effects and systemic toxicity. This review focuses on blood cell membrane-derived nanocarriers as drug delivery and immune-regenerative platforms, in which membrane-mediated immunomodulation synergizes with therapeutic payloads to address inflammatory or degenerative pathology. We discuss recent advances in blood cell membrane coating technologies, including membrane isolation, nanoparticle core selection, fabrication techniques, and the development of hybrid and engineered membrane systems that enhance therapeutic efficacy through integrated immune regulation and localized drug action. To illustrate these advances, we also compile membrane type-specific nanocarrier systems, summarizing their core nanoparticle designs, coating strategies, therapeutic cargoes, and associated disease models. Challenges related to biological source variability, scalability, safety, and regulatory standardization remain important considerations for clinical translation. In this review we systematically address these issues and discuss emerging solutions and design strategies aimed at advancing blood cell membrane-based nanocarriers toward clinically viable immune-regenerative therapies. Full article
(This article belongs to the Special Issue Cell-Mediated Delivery Systems)
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20 pages, 1593 KB  
Review
Nano-Engineered Delivery of the Pro-Apoptotic KLA Peptide: Strategies, Synergies, and Future Directions
by Yunmi Cho, Ha Gyeong Kim and Eun-Taex Oh
Biomolecules 2026, 16(1), 74; https://doi.org/10.3390/biom16010074 - 2 Jan 2026
Cited by 1 | Viewed by 1058
Abstract
Antimicrobial peptides have been increasingly recognized as potential anticancer agents, with the KLA peptide (KLAKLAK2) being one of the most well-known and successful examples. The research interest in the KLA peptide is attributed to its ability to induce apoptosis in cancer [...] Read more.
Antimicrobial peptides have been increasingly recognized as potential anticancer agents, with the KLA peptide (KLAKLAK2) being one of the most well-known and successful examples. The research interest in the KLA peptide is attributed to its ability to induce apoptosis in cancer cells by disrupting the mitochondrial membrane. However, the KLA peptide exhibits poor cellular uptake and it lacks targeting specificity, limiting its clinical potential in cancer therapy. In this review, recent advances in nano-engineered delivery platforms for overcoming the limitations of KLA peptides and enhancing their anticancer efficacy are discussed. Specifically, various nanocarrier systems that enable targeted delivery, controlled release and/or improved bioavailability, including pH-responsive nanosystems, photo-chemo combination liposomes, self-assembled peptide-based nanostructures, nanogel-based delivery systems, homing domain-conjugated KLA structures, inorganic-based nanoparticles, and biomimetic nanocarriers, are highlighted. Additionally, synergistic strategies for combining KLA with chemotherapeutic agents or immunotherapeutic agents to overcome resistance mechanisms in cancer cells are examined. Finally, key challenges for the clinical application of these nanotechnologies are summarized and future directions are proposed. Full article
(This article belongs to the Special Issue Advances in Nano-Based Drug Delivery Systems)
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