INTRODUCTION:Traumatic brain injury presents a significant challenge, characterized by complex pathologies including neuroinflammation and axonal degeneration with limited treatment options. One of the promising areas of traumatic brain injury treatment is cell therapy. However, a critical aspect of this therapy is the method of stem/progenitor cell administration. This study aimed to evaluate the therapeutic potential of glial progenitor cells derived from induced pluripotent stem cells after intra-arterial administration in an experimental model of traumatic brain injury of male Wistar rats. METHODS:Neurological status was assessed using the limb-placing, cylinder, and beam walking tests. Lesion volume was quantified by magnetic resonance imaging. Markers of inflammation and neurogenesis were analyzed using immunofluorescence staining and quantitative reverse transcription polymerase chain reaction. Cell migration was tracked via magnetic resonance imaging and histology. RESULTS:Intra-arterial administration provided targeted delivery of cells into the cerebral vasculature. The cells successfully crossed the blood-brain barrier, migrated into the brain parenchyma, and were detectable for up to 48 hours. Transplantation led to significant improvement in sensorimotor function, reduced neuroinflammation in the injured area, and promoted neurogenesis. DISCUSSION:The observed therapeutic effects are likely mediated by the factors secreted by glial progenitor cells, which possess anti-inflammatory and regenerative properties (paracrine signaling effect) and/or by their transient interactions with the target cells (juxtacrine signaling effect). CONCLUSION:Glial progenitor cells derived from induced pluripotent stem cells and delivered via the intra-arterial route show promise for the treatment of traumatic brain injury by reducing inflammation and enhancing neurogenesis.
Ultracentrifugation (UC) has long been considered the “gold standard” for extracellular vesicle (EV) isolation. However, due to its drawbacks such as high cost of an ultracentrifuge and rotors, time-consuming and labor-intensive protocol, low yield considering initial biofluid volume and low throughput, development of new EV isolation approaches is still ongoing. Here we compare three methods for isolating the most studied EV subtype, small extracellular vesicles (sEVs), from human plasma: ultracentrifugation (UC), express asymmetric depth filtration (ExADFi), and anti-CD9 immunoaffinity capture (AS-CD9) with focus on their Raman and proteomic profiles. For all three methods, purity and quality of the sEV isolation were assessed based on the level of contamination of the sEV fraction with major plasma proteins such as albumin and apolipoproteins (APOA1, APOH, APOA4, APOC2, APOC1, and APOC4). UC showed the highest ratio of protein to nanoparticle concentration. AS-CD9 and ExADFi provided comparable to UC purity and levels of non-vesicular contaminants with AS-CD9 requiring minimal time and labor. ExADFi showed characteristics including purity of the sEV samples, yield, and isolation time that is between the UC and AS-CD9 methods. Raman spectroscopy provided more details about characteristics of the isolated sEVs and confirmed differences observed in the proteomic profiles. The findings demonstrate that the AS-CD9 and ExADFi methods could be appropriate substitutes of the classical UC-based isolation method and be chosen depending on the final requirements and use of the purified sEVs such as further functional and biomarker studies.
Human papillomavirus (HPV)-associated cervical lesions remain a significant disease burden and minimally invasive blood-based biomarkers could complement cytology and HPV testing. This study aimed to characterize the proteomic composition of plasma-derived CD9+ small extracellular vesicles (sEVs) across the morphological spectrum of HPV-associated cervical disease, from histologically normal (NILM) through low-grade (LSIL) and high-grade (HSIL) lesions to invasive squamous cell carcinoma (SCC). Plasma samples from 34 women (NILM, LSIL, HSIL, SCC) were pooled per group, and CD9+ sEVs were isolated using an electrochemically controlled immunoaffinity capture method, followed by nanoparticle tracking analysis, transmission electron microscopy, Western blotting, and label-free LC-MS/MS proteomic profiling. The core sEV proteome comprised 258 shared proteins. LSIL showed the most pronounced changes with broad enrichment of complement and coagulation components and acute-phase reactants alongside depletion of immunoglobulin chains and complement C1r-like protein (C1RL). HSIL exhibited few differential proteins, dominated by neutrophil degranulation and retinoid metabolism pathways. SCC demonstrated extensive cargo depletion (22 downregulated proteins) and a nearly sevenfold upregulation of C1RL. Five proteins (including immunoglobulin chains and GPLD1) correlated positively with lesion severity. Pathway analysis consistently implicated platelet activation, lipoprotein remodeling, and insulin-like growth factor signaling. We conclude that plasma CD9+ sEVs carry stage-specific proteomic signatures distinguishing HPV-associated cervical lesions, with C1RL emerging as a candidate biphasic marker warranting further validation.
An attempt was made to rejuvenate cumulus cells (CCs) of women of advanced maternal age (AMA) using extracellular vesicles (EV) isolated from the follicular fluid (FF) of young donors. FF samples were taken from healthy women aged 23-26 during the ART program. CCs from patients of advanced maternal age (36-47 years) were co-cultured with EV of young donors. The target genes were selected based on their functions in CC and early embryogenesis (PFKP, EREG, UBE2T, HAS2, VCAN, CYP19A, GREM1, STS, BAX, PTGS2, BCL2, SPSB2, AREG, CCNB1, EGFR). Comparative analysis of all women without stratification by the type of final follicle maturation drug (hCG or gonadotropin-releasing hormone agonist, GnRHa) revealed no statistically significant difference in the expression of the selected genes. In the group treated with GnRHa, a statistically significant increase in the expression of HAS2 (by 1.8 times, p = 0.04), GREM1 (by 1.4 times, p = 0.08), and BAX (by 1.4 times, p = 0.04) in CCs was observed after their co-culturing with FF EVs from young donors. The findings suggest the potential for the "rejuvenation" of CC in women of advanced maternal age when aGnRH is used in combination with FF EVs from young women, because the expression of apoptosis genes decreases and the expression cell proliferation gene increases during co-culturing of CC with FF EVs.
Cytokine and oxylipin profiles in rat brain homogenates were characterized as an inflammatory response 6 h after a single intracerebroventricular injection of LPS (19.3 µg LPS/ventricle), serving as a model of the inflammatory process in trauma, stroke, and similar stroke-like conditions that cause acute reactions. The potential use of 4-methylumbelliferone (4-MU), an inhibitor of hyaluronic acid (HA) synthesis, clinically approved for the treatment of bile spasm, as an anti-inflammatory drug in the early stages of the brain’s response to a damaging stimulus was evaluated. i.c.v. injection of LPS induced proinflammatory genes expression (TNFα, IL-6 and IL-1β) and oxylipins synthesis. Simultaneous addition of 4-MU with LPS reduced LPS-induced TNFα, IL-1β, IL-6 release and reduced the increase in COX-derived metabolites—PGF2α, PGE2, 6-keto-PGF1α, TXB2, 12-HHT, and 15-HETE. LPS stimulated only the expression of HAS2, while the addition of 4-MU reduced the expression of LPS-stimulated HAS2, and induced the expression of HYAL1, but not HYAL2. Our results reveal significant changes in cytokines and oxylipins synthesis in the model of acute inflammation, and suggest that 4-MU can be viewed as a promising therapeutic agent in the early stages of neuroinflammation.
Traumatic brain injuries (TBIs) are a serious problem affecting individuals of all ages. Mitochondrial dysfunctions represent a significant form of secondary injury and may serve as a promising target for therapeutic intervention. Our research demonstrated that craniotomy, which precedes the experimental induction of trauma in mice, can cause considerable damage to mitochondrial DNA (mtDNA), disrupt the regulatory expression of angiogenesis, and increase inflammation. However, the reduction in the mtDNA copy number and glial activation occur only after a direct impact to the brain. We explored two potential therapeutic agents: the dietary supplement L-carnitine—a potential reserve source of ATP for the brain—and the cardiac drug mildronate, which inhibits L-carnitine but activates alternative compensatory pathways for the brain to adapt to metabolic disturbances. We found that L-carnitine injections could protect against mtDNA depletion by promoting mitochondrial biogenesis. However, they also appeared to aggravate inflammatory responses, likely due to changes in the composition of the gut microbiome. On the other hand, mildronate enhanced the expression of genes related to angiogenesis while also reducing local and systemic inflammation. Therefore, both compounds, despite their opposing metabolic effects, have the potential to be used in the treatment of secondary injuries caused by TBI.
GNAO1-associated disorders are ultra-rare autosomal dominant conditions, which can manifest, depending on the exact pathogenic variant in GNAO1, as a spectrum of neurological phenotypes, including epileptic encephalopathy, developmental delay with movement disorders, or late-onset dystonia. There are currently no effective treatments available, apart from symptomatic options. In this work, we suggest harnessing personalized RNA therapy to treat GNAO1 patients and focus specifically on a recurrent pathogenic variant (E246K). We systemically screened allele-specific antisense oligonucleotides (ASOs) targeting the mutated allele to identify a potent and specific sequence using both reporter-based platforms and a patient-derived cellular model. We show that reduction of mutated GNAO1 in vitro by knockout or by ASO has a beneficial functional outcome, which can be measured by cAMP accumulation and gene expression changes. We established a Gnao1-E246K mouse model that shows a neurological phenotype, which partially recapitulates the human condition. Due to sequence similarity, the mouse can be treated with the selected ASO to test treatment efficacy in animal models, as shown in vitro using murine neural progenitor cells. Our results demonstrate a beneficial effect for the reduction of mutated GNAO1 by ASO in patient-derived models, demonstrating its feasibility as a therapeutic approach.
Introduction:Mammalian liver regeneration is a complex process, the regulation of which involves many mechanisms. The immune system has a pronounced influence on the course of reparative processes in mammals. The hepatic portal vein system provides a direct anatomical connection between the liver and the spleen - the largest lymphoid organ in mammals. Accordingly, the spleen may have a direct effect on liver regeneration as a source of biologically active substances and migrating leukocytes. Specific mechanisms of such influence remain understudied. This study aimed to assess the effect of splenectomy on liver regeneration after 70% resection in mouse model. Methods:Murine model of liver regeneration after 70% resection was reproduced in C57BL/6 male mice, some of them splenectomized 7 days before the liver resection. Proliferation marker Ki67 in the liver was assessed by immunohistochemistry and the protein content for cyclin D1, cyclin A2 and p53 in the liver was assessed by Western blotting. Using TUNEL assay, an increase in the number of apoptotic cells was detected. The highest number of TUNEL+ cells was detected 1 day after liver resection, while the number of apoptotic cells in animals with prior splenectomy was significantly lower compared to animals with preserved spleen. The dynamics of Ly6C+ monocytes and Ly6G+ leukocytes were studied by flow cytometry. Macrophages were isolated from the regenerating liver using magnetic sorting for F4/80 and their gene expression profiles were analyzed using Clariom™ S Assay, mouse. Peripheral blood and splenic monocytes were isolated by magnetic sorting for CD115 and analyzed by Illumina HiSeq 2500 platform RNA sequencing. Migration of peripheral blood and splenic leukocytes to the regenerating liver was studied using allogeneic transplantation of cells derived from B10-GFP mice. Results and discussion:Animals splenectomized prior to the liver resection showed higher rates of cell proliferation along with higher content of р53 protein in the remnant organ. Splenectomy also correlated with decreased rates of Ly6C+ monocyte and Ly6G+ leukocyte migration. Macrophages in the regenerating liver were transcriptomically enriched for signaling pathways associated with monocyte migration, cell adhesion and cell death. As shown by the GFP+ leukocyte transplantation experiment, the leukocytes migrating to the regenerating liver are mainly of splenic origin. According to high-throughput sequencing data, these cells express high levels of cell adhesion molecules. The spleen has a significant effect on liver regeneration through secretion of biologically active substances and migrating leukocytes. Pre-splenectomy leads to a more pronounced liver damage response after 70% resection, as indicated by higher rates of cell proliferation, higher p53 protein content and cell death-associated signaling pathway activation.
The ketogenic diet (KD) has been shown to be effective in treating various brain pathologies. In this study, we conducted detailed transcriptomic and metabolomic profiling of rat brains after KD and ischemic stroke in order to investigate the effects of KD and its underlying mechanisms. We evaluated the effect of a two-month KD on gene expression in intact brain tissue and after middle cerebral artery occlusion (MCAO). We analyzed the effects of KD on gut microbiome composition and blood metabolic profile as well as investigated the correlation between severity of neurological deficits and KD-induced changes. We found transcriptional reprogramming in the brain after stroke and KD treatment. The KD altered the expression of genes involved in the regulation of glucose and fatty acid metabolism, mitochondrial function, the immune response, Wnt-associated signaling, stem cell development, and neurotransmission, both in intact rats and after MCAO. The KD led to a significant change in the composition of gut microbiome and the levels of amino acids, acylcarnitines, polyunsaturated fatty acids, and oxylipins in the blood. However, the KD slightly worsened the neurological functions after MCAO, so that the therapeutic effect of the diet remained unproven.
Extracellular vesicles (EVs), biomimetics, and other biological nanoparticles (BNs) produced from human cells are gaining increasing attention in the fields of molecular diagnostics and nanomedicine for the delivery of therapeutic cargo. In particular, BNs are considered prospective delivery vehicles for different biologics, including protein and RNA therapeutics. Moreover, EVs are widely used in molecular diagnostics for early detection of disease-associated proteins and RNA. Technical approaches for measuring biologics mostly originated from the field of EVs and were later adopted for other BNs, such as extracellular vesicle-mimetic nanovesicles, membrane nanoparticles (nanoghosts), and hybrid nanoparticles, with minimal modifications. Here, we demonstrate that BNs are highly resistant to protocols that severely underestimate the protein and RNA content of BNs, and provide the relevance of these data both for general BNs characterization and practical applications of CRISPR/Cas-based therapies. We demonstrate that the addition of saponin leads to an similar to 2- to 7-fold enhancement in protein isolation and an similar to 2- to 242-fold improvement in RNA recovery rates and detection efficiency. Differences in the proteolipid contents of BNs, measured by Raman and surface-enhanced Raman spectroscopy, correlate with their susceptibility to saponin treatment for cargo extraction. Finally, we develop a unified protocol using saponin to efficiently isolate proteins and RNA from the BNs. These data demonstrate that previously utilized protocols underestimate BN cargo contents and offer gold standard protocols that can be broadly adopted into the field of nanobiologics, molecular diagnostics, and analytical chemistry.
Hypoxic–ischemic encephalopathy (HIE) is a severe neurological disorder caused by perinatal asphyxia with significant consequences. Early recognition and intervention are crucial, with therapeutic hypothermia (TH) being the primary treatment, but its efficacy depends on early initiation of treatment. Accurately assessing the HIE severity in neonatal care poses challenges, but omics approaches have made significant contribution to understanding its complex pathophysiology. Our study further explores the impact of HIE on the blood metabolome over time and investigated changes associated with hypothermia’s therapeutic effects. Using a rat model of hypoxic–ischemic brain injury, we comprehensively analyzed dried blood spot samples for fat-soluble compounds using HPLC-MS. Our research shows significant changes in the blood metabolome after HIE, with a particularly rapid recovery of lipid metabolism observed. Significant changes in lipid metabolites were observed after 3 h of HIE, including increases in ceramides, carnitines, certain fatty acids, phosphocholines, and phosphoethanolamines, while sphingomyelins and N-acylethanolamines (NAEs) decreased (p < 0.05). Furthermore, NAEs were found to be significant features in the OPLS-DA model for HIE diagnosis, with an area under the curve of 0.812. TH showed a notable association with decreased concentrations of ceramides. Enrichment analysis further corroborated these observations, showing modulation in several key metabolic pathways, including arachidonic acid oxylipin metabolism, eicosanoid metabolism via lipooxygenases, and leukotriene C4 synthesis deficiency. Our study reveals dynamic changes in the blood metabolome after HIE and the therapeutic effects of hypothermia, which improves our understanding of the pathophysiology of HIE and could lead to the development of new rapid diagnostic approaches for neonatal HIE.
Hypoxic–ischemic encephalopathy (HIE) is one of the most common causes of childhood disability. Hypothermic therapy is currently the only approved neuroprotective approach. However, early diagnosis of HIE can be challenging, especially in the first hours after birth when the decision to use hypothermic therapy is critical. Distinguishing HIE from other neonatal conditions, such as sepsis, becomes a significant problem in diagnosis. This study explored the utility of a metabolomic-based approach employing the NeoBase 2 MSMS kit to diagnose HIE using dry blood stains in a Rice–Vannucci model of HIE in rats. We evaluated the diagnostic fidelity of this approach in a range between 3 and 6 h after the onset of HIE, including in the context of systemic inflammation and concomitant hypothermic therapy. Discriminant analysis revealed several metabolite patterns associated with HIE. A logistic regression model using glycine levels achieved high diagnostic fidelity with areas under the receiver operating characteristic curve of 0.94 at 3 h and 0.96 at 6 h after the onset of HIE. In addition, orthogonal partial least squares discriminant analysis, which included five metabolites, achieved 100% sensitivity and 80% specificity within 3 h of HIE. These results highlight the significant potential of the NeoBase 2 MSMS kit for the early diagnosis of HIE and could improve patient management and outcomes in this serious illness.
Abstract Study question Does intraovarian injection of MSC-Derived Extracellular Vesicles (EVs) and autologous platelet rich plasma (PRP) improves the outcome of IVF in women with Diminished Ovarian reserve? Summary answer EVs and PRP therapies increse Antral follicle count (AFC), lower FSH level and result in higher amount of mature oocytes and blastocysts What is known already Diminished ovarian reserve (DOR) and premature ovarian insufficiency (POI) are significant impediments to the success of in vitro fertilization (IVF). Current strategies for ovarian stimulation primarily affects only the growth of antral follicles. Even in scenarios where ovarian ovulatory function is compromised, a reservoir of dormant follicles persists, which could potentially be activated by stem cells. Mesenchymal stem cells (MSCs), owing to their multipotent differentiation capabilities and paracrine signaling properties, have emerged as leading candidates for innovative therapeutic approaches. Recent scientific inquiries have highlighted the paracrine impact of EVs secreted by stem cells, underscoring their prospective therapeutic relevance. Study design, size, duration This prospective interventional study was conducted at the V.I. Kulakov Scientific Research Center for Obstetrics, Gynecology, and Perinatology in Russia. It involved 60 infertile female participants aged 20 to 38 years, each with DOR and a history of at least two unsuccessful IVF cycles. These participants were enrolled in the study during their subsequent IVF cycle. Prior to inclusion, all patients provided written informed consent. Participants/materials, setting, methods Patients in group 1 (n = 30) received treatment with exosomes derived from human umbilical cord mesenchymal stem cells (HUC-MSCs-Exos) prior to initiating their in vitro fertilization (IVF) cycle. In contrast, participants in group 2 (n = 30) underwent intraovarian therapy with autologous platelet-rich plasma (PRP) in preparation for their IVF cycle. The comparative analysis encompassed antral follicle count (AFC), anti-Müllerian hormone (AMH) levels, follicle-stimulating hormone (FSH) levels, ovarian stimulation outcomes, and the primary characteristics of oogenesis and embryogenesis. Main results and the role of chance After transplantation of EVs and PRP the ovarian function-related hormone levels and the AFC returned to nearly normal parameteres.Meanwhile, after exosomal treatment the improvement in reproductive outcomes was more significant. FSH concentration was significantly different before and 30 days after the procedure in both groups. In group 1 FSH values were less than the initial data In 95% of cases, in group 2 – in 72% of cases. AMH levels did not change significantly in both groups. The AFC increased in group 1 compared to group 2. All Patients underwent an IVF antagonist cycle after 3 months from the treatment. The number of obtained oocytes in group 1 ranged from 2 to 8, MII from 1 to 6; in group 2: from 0-5, MII – 0-5. The number of blastocysts in group 1 ranged from 1 to 5, in group 2 – from 0 to 3. In group 1, pregnancy occurred in 9 patients (30%): 1 women ( 3,3%) conceived spontaneously in the cycle of procedures, 8 (26,7%) attempted IVF, in group 2 pregnancy occurred in 4 patients (13,3%): 4 attempted IVF. EVs and PRP injections improve outcomes of IVF results in women with low ovarian reserve. Limitations, reasons for caution Limitations may include the fact that the study is single-center and has a rather small amount of patients enrolled in the study. Fundamental approaches to further research in this area are also required to better understand the obtained results. Wider implications of the findings EVs and PRP therapies appear to enhance ovarian reserve metrics and the success rates of IVF programs in patients with DOR. The clinical implementation of these interventions may offer improved reproductive prospects for patients whose sole option was previously oocyte donation. Trial registration number 121040600410-7
Despite prevention strategies, cervical cancer remains a significant public health issue. Human papillomavirus plays a critical role in its development, and early detection is vital to improve patient outcomes. The incidence of cervical cancer is projected to rise, necessitating better diagnostic tools. Traditional screening methods like the cytological examination and human papillomavirus testing have limitations in sensitivity and reproducibility. Liquid-based cytology offers some improvements, but the need for more reliable and sensitive techniques persists, particularly for detecting precancerous lesions. Liquid biopsy is a non-invasive method that analyzes cancer-derived products in biofluids like blood, offering potential for real-time monitoring of tumor progression, metastasis, and treatment response. It can be based on detection of circulating tumor cells (CTCs), circulating free DNA (cfDNA), and microRNAs (miRNAs). This review particularly underlines the potential of microRNAs, which are transported by extracellular vesicles. Overall, this article underscores the importance of continued research into non-invasive diagnostic methods like liquid biopsy to enhance cervical cancer screening and treatment monitoring.
Brain injury resulting from adverse events during pregnancy and delivery is the leading cause of neonatal morbidity and disability. Surviving neonates often suffer long-term motor, sensory, and cognitive impairments. Birth asphyxia is among the most common causes of neonatal encephalopathy. The integration of ultrasound, including Doppler ultrasound, and near-infrared spectroscopy (NIRS) offers a promising approach to understanding the pathology and diagnosis of encephalopathy in this special patient population. Ultrasound diagnosis can be very helpful for the assessment of structural abnormalities associated with neonatal encephalopathy such as alterations in brain structures (intraventricular hemorrhage, infarcts, hydrocephalus, white matter injury) and evaluation of morphologic changes. Doppler sonography is the most valuable method as it provides information about blood flow patterns and outcome prediction. NIRS provides valuable insight into the functional aspects of brain activity by measuring tissue oxygenation and blood flow. The combination of ultrasonography and NIRS may produce complementary information on structural and functional aspects of the brain. This review summarizes the current state of research, discusses advantages and limitations, and explores future directions to improve applicability and efficacy.
Background De novo pathogenic variants in GNAO1—the gene encoding the major neuronal G protein Gαo—cause pediatric encephalopathies and other neurological deficiencies largely refractory to available therapies. Zn2+ emerged to restore guanosine triphosphate hydrolysis and cellular interactions of pathogenic Gαo; dietary zinc salt supplementation improves lifespan and motoric function in a Drosophila disease model. Methods Using biochemical, animal, and first-in-human studies, we provide support for the patient stratification and application of zinc acetate in GNAO1-associated disorders. Findings We show that 16 different pathogenic missense variants cluster in three distinct groups in their responsiveness to Zn2+, and we provide the safety study in a mouse disease model. We further describe treatment of a 3-year-old patient with the common pathogenic GNAO1 variant c607G>A, p.Gly203Arg with oral 50 mg zinc (in the form of zinc acetate) daily, as applied in Wilson’s disease. During 11 months of treatment, the patient shows cessation of daily dyskinetic crises, improved Burke-Fahn Marsden Dystonia Rating Scale movement score, reduction in epileptic seizures, and an excellent safety profile. Conclusions Our findings warrant a large-scale clinical trial and might set the new standard of care for GNAO1-related disorders. Funding This work was funded by the Russian Science Foundation (grant #21-15-00138) and GNAO1 España.
The consequences of stroke include cognitive deficits and sensorimotor disturbances, which are largely related to mitochondrial impairments in the brain. In this work, we have shown that the mimetic of the ketogenic diet beta-hydroxybutyrate (βHB) can improve neurological brain function in stroke. At 3 weeks after photothrombotic stroke, mice receiving βHB with drinking water before and after surgery recovered faster in terms of sensorimotor functions assessed by the string test and static rods and cognitive functions assessed by the Morris water maze. At the same time, the βHB-treated mice had lower expression of some markers of astrocyte activation and inflammation (Gfap, Il-1b, Tnf). We hypothesize that long-term administration of βHB promotes the activation of the nuclear factor erythroid 2-related factor 2/antioxidant response element (Nrf2/ARE) pathway, which leads to increased expression of antioxidant genes targeting mitochondria and genes involved in signaling pathways necessary for the maintenance of synaptic plasticity. βHB partially maintained mitochondrial DNA (mtDNA) integrity during the first days after photothrombosis. However, in the following three weeks, the number of mtDNA damages increased in all experimental groups, which coincided with a decrease in Ogg1 expression, which plays an important role in mtDNA repair. Thus, we can assume that βHB is not only an important metabolite that provides additional energy to brain tissue during recovery from stroke under conditions of mitochondrial damage but also an important signaling molecule that supports neuronal plasticity and reduces neuroinflammation.
There is an increasing accumulation of data on the exceptional importance of mitochondria in the occurrence and treatment of cancer, and in all lines of evidence for such participation, there are both energetic and non-bioenergetic functional features of mitochondria. This analytical review examines three specific features of adaptive mitochondrial changes in several malignant tumors. The first feature is characteristic of solid tumors, whose cells are forced to rebuild their energetics due to the absence of oxygen, namely, to activate the fumarate reductase pathway instead of the traditional succinate oxidase pathway that exists in aerobic conditions. For such a restructuring, the presence of a low-potential quinone is necessary, which cannot ensure the conventional conversion of succinate into fumarate but rather enables the reverse reaction, that is, the conversion of fumarate into succinate. In this scenario, complex I becomes the only generator of energy in mitochondria. The second feature is the increased proliferation in aggressive tumors of the so-called mitochondrial (peripheral) benzodiazepine receptor, also called translocator protein (TSPO) residing in the outer mitochondrial membrane, the function of which in oncogenic transformation stays mysterious. The third feature of tumor cells is the enhanced retention of certain molecules, in particular mitochondrially directed cations similar to rhodamine 123, which allows for the selective accumulation of anticancer drugs in mitochondria. These three features of mitochondria can be targets for the development of an anti-cancer strategy.
The demand for RNA-based therapeutics is increasing globally. However, their use is hampered by the lack of safe and effective delivery vehicles. Here, we developed technologies for highly efficient delivery of RNA cargo into programmable extracellular vesicle-mimetic nanovesicles (EMNVs) by fabricating hybrid EMNV-liposomes (Hybs). Tissue targeting is endowed by highly efficient genetic platforms based on truncated CD63 (ΔCD63) or PTGFRN proteins. For the first time we reveal their efficiency in functionalizing EMNVs, resulting in >10-fold enhancement of nanoparticle internalization in vitro and >2-fold in vivo. RNA delivery using Hybs demonstrated efficiency of >85% in human and mouse cell lines. Comparative analysis of EMNVs and Hyb lysosome colocalization and stability suggested that Hybs enter the lysosomal compartment and escape over time, whereas EMNVs primarily avoid it. Finally, we used these technologies to generate liver-targeting Hybs loaded with therapeutic small interfering RNA and demonstrated the robust efficiency of this system in vitro and in vivo. These technologies can be adapted for manufacturing a wide range of next-generation vehicles for highly efficient, safe delivery of RNA into desired organs and tissues for therapeutic and prophylactic applications.
Biological nanoparticles (NPs), such as extracellular vesicles (EVs), exosome-mimetic nanovesicles (EMNVs) and nanoghosts (NGs), are perspective non-viral delivery vehicles for all types of therapeutic cargo. Biological NPs are renowned for their exceptional biocompatibility and safety, alongside their ease of functionalization, but a significant challenge arises when attempting to load therapeutic payloads, such as nucleic acids (NAs). One effective strategy involves fusing biological NPs with liposomes loaded with NAs, resulting in hybrid carriers that offer the benefits of both biological NPs and the capacity for high cargo loads. Despite their unique parameters, one of the major issues of virtually any nanoformulation is the ability to escape degradation in the compartment of endosomes and lysosomes which determines the overall efficiency of nanotherapeutics. In this study, we fabricated all major types of biological and hybrid NPs and studied their response to the acidic environment observed in the endolysosomal compartment. In this study, we show that EMNVs display increased protonation and swelling relative to EVs and NGs in an acidic environment. Furthermore, the hybrid NPs exhibit an even greater response compared to EMNVs. Short-term incubation of EMNVs in acidic pH corresponding to late endosomes and lysosomes again induces protonation and swelling, whereas hybrid NPs are ruptured, resulting in the decline in their quantities. Our findings demonstrate that in an acidic environment, there is enhanced rupture and release of vesicular cargo observed in hybrid EMNVs that are fused with liposomes compared to EMNVs alone. This was confirmed through PAGE electrophoresis analysis of mCherry protein loaded into nanoparticles. In vitro analysis of NPs colocalization with lysosomes in HepG2 cells demonstrated that EMNVs mostly avoid the endolysosomal compartment, whereas hybrid NPs escape it over time. To conclude, (1) hybrid biological NPs fused with liposomes appear more efficient in the endolysosomal escape via the mechanism of proton sponge-associated scavenging of protons by NPs, influx of counterions and water, and rupture of endo/lysosomes, but (2) EMNVs are much more efficient than hybrid NPs in actually avoiding the endolysosomal compartment in human cells. These results reveal biochemical differences across four major types of biological and hybrid NPs and indicate that EMNVs are more efficient in escaping or avoiding the endolysosomal compartment.