Cellular senescence represents a critical biological paradox in oncology. Although it evolved as a safety mechanism to halt tumorigenesis through stable cell cycle arrest, its persistence in tissues can alter the microenvironment, promoting tumor recurrence. In the context of glioblastoma (GBM), this phenomenon is critically important, as current standard therapies, such as radiotherapy and chemotherapy, inadvertently induce a state of senescence known as “therapy-induced senescence” (TIS). Senescent cells remain metabolically active and acquire a unique Senescence-Associated Secretory Phenotype (SASP), characterized by the release of pro-inflammatory cytokines, proteases, and growth factors. SASP reshapes the tumor microenvironment (TME) through paracrine signals, promoting immunosuppression, invasiveness, drug resistance and tumor recurrence. Different glial populations, including astrocytes, microglia, and oligodendrocyte precursor cells (OPCs), respond differently to senescence, specifically contributing to the creation of a permissive niche for tumor recurrence. To contrast the effects of this phenomenon, a promising therapeutic strategy has emerged, the “one-two punch,” which induces initial DNA damage followed by selective elimination of senescent cells with senolytic drugs. In this review, we analyze in detail the efficacy of targeted synthetic agents, such as the Bcl-2 family inhibitor Navitoclax, and natural bioactive compounds such as Quercetin and Fisetin. The analysis focuses on the molecular mechanisms through which these agents disrupt anti-apoptotic pathways (SCAPs) and inhibit the PI3K/AKT/mTOR axis, restoring sensitivity to apoptosis. We propose that the integration of senolytic adjuvants into standard clinical protocols may represent a crucial frontier for eliminating residual disease reservoirs and we also suggest the possibility of combining them with molecules with neuroprotective action to significantly improve the prognosis in GBM.
Technological advances in DBS hardware and software represent a significant growth area in functional neurosurgery. These advancements have the potential to significantly enhance treatment outcomes and expand the scope of neurological disorders that can be effectively addressed through DBS interventions. The advent of directional deep brain stimulation (DBS) ushers in a new era in neuromodulation, providing enhanced benefits to individuals with Parkinson’s disease, optimizing clinical outcomes more efficiently, and targeting treatment for stubborn symptoms using data-driven approaches. Implementing a multimodal programming strategy and incorporating cutting-edge current fractionation technology and image-guided tools for lead localization and brain sensing reduces reliance on traditional trial-and-error programming methods. This paves the way for a more predictive application of this therapy. These advancements are poised to propel the development of advanced closed-loop stimulation systems that seamlessly integrate continuous data streams, ultimately leading to improved patient care.
INTRODUCTION:Magnetic resonance imaging-guided focused ultrasound (MRgFUS) has shown promising results for a variety of neurological conditions, including movement disorders, brain tumors, and degenerative diseases. Recent clinical trials have demonstrated that MRgFUS can produce therapeutic effects in essential tremor (ET) and Parkinson's disease (PD), comparable to those achieved with other neurosurgical interventions. Furthermore, there has been increasing attention on the development of FUS technology and its clinical applications, aimed at exploring new uses and enhancing existing ones. AREAS COVERED:In this review, a comprehensive search was conducted across multiple platforms, including PubMed, Scopus, and the Cochrane Library. Filters were applied to include studies based on publication year and clinical trials involving human subjects (excluding animal studies). A thorough analysis of the results was crucial for achieving the objectives of our research. While some studies are still awaiting results, they show promise; others have already been completed. EXPERT OPINION:The authors specifically selected six studies that yielded excellent results, covering aspects such as treatment side effects, pain location, key findings, ultrasound temperature, and sample size. he aim of this review is to provide an overview of the recent literature and ongoing clinical trials regarding the application of MRgFUS in the treatment of neuropathic pain.
In recent years, the development of new immunotherapy strategies has been a significant breakthrough in cancer treatment. Among these, engineered T cell therapy with chimeric antigen receptors (CAR-T) has produced notable clinical results, especially in hematological malignancies. This success has sparked growing interest in extending the application of CAR-Ts to solid tumors, including gliomas. Gliomas-in particular, glioblastoma multiforme (GBM)-are among the most aggressive primary brain tumors, associated with a poor prognosis and a median survival of approximately one year after diagnosis. However, the translation of CAR-T therapy to gliomas presents significant challenges, related to factors such as tumor heterogeneity, presence of the blood-brain barrier (BBB), and a strongly immunosuppressive tumor environment. Despite this, in recent years, there has been an intensification of research efforts aimed at the identification of new antigenic targets and the development of preclinical models-both in vitro and in vivo-to evaluate the efficacy and safety of CAR-Ts in the treatment of gliomas. Despite promising results, currently available models still have essential limitations in faithfully reproducing the complexity of human gliomas. This review aims to offer an exhaustive overview of the most recent preclinical studies on CAR-T therapy in gliomas, with a focus on the identification of molecular targets, experimental strategies aimed at overcoming immunological barriers, and translational challenges that need to be addressed for future successful clinical implementation.
Abstract The limiting step to treating glioblastoma (GBM) patients is the close blood-brain barrier (BBB) which protects the brain making it an inaccessible compartment. Although multiple studies have highlighted the presence of circulating tumour cells (CTCs) in glioblastoma multiforme (GBM) patients their relationship with brain microenvironment and BBB permeability was not explored in depth. We studied the development of GBM by transferring tumour cells into the mouse brain and also in a subcutaneous location to verify how the different microenvironment affected the release of circulating tumour and endothelial cells. Glioblastoma U3T3MG IDHwt secondary cell line was transfected to track circulating tumour cells released. Moreover, both U3T3 cells and short-time-expanded CTCs1 from GBM patients were used for intracranial xenografts and patient-derived xenografts (PDX). The in vivo models demonstrated the correspondence between BBB permeability with the release of CTCs and the increment of endothelial progenitor cells in GBM HIFpos >20% compared to subcutaneous xenografts releasing CTCs in GBM HIFpos< 20%. These data were confirmed in HIFpos tissue biopsy of GBM-IDHwt patients with CTCs >30 cells/ml. Both in PDXs and in the GBM patient demonstrated that the release of CTCs was intermittent, related to BBB opening induced by HIF-dependent cytokines release (IL8, TNFa)2. In parallel, the analysis of structural Glial fibrillary acidic protein (GFAP)3, on nasal secretion and interstitial fluid, collected in surgical treated GBM patients, demonstrated that the recognition of the two GFAP isoforms (p150 and p50 kDa) were the result of inflammatory microenvironment enriched for proteases induced by IL8, TNFa. Overall data indicate at least two different ways of monitoring the BBB and the brain microenvironment, one distal (blood) and one proximal (nasal secretion) useful to perform precision treatments in patients with GBM. REFERENCES 1) Malara, N. et al. Mol Cancer 23, 32 (2024). doi.org/10.1186/s12943-024-01951-x2) Coluccio ML. et al Cancers (2020) doi: 10.3390/cancers12061362.3) Malara, N. et al Front. Oncol.(2021) doi.org/10.3389/fonc.2021.737730
Introduction: Intraoperative Neurophysiological Monitoring (IOM) is widely used in neurosurgery but specific guidelines are lacking. Therefore, we can assume differences in IOM application between Neurosurgical centers. Research question: The section of Functional Neurosurgery of the Italian Society of Neurosurgery realized a survey aiming to obtain general data on the current practice of IOM in Italy. Materials and methods: A 22-item questionnaire was designed focusing on: volume procedures, indications, awake surgery, experience, organization and equipe. The questionnaire has been sent to Italian Neurosurgery centers. Results: A total of 54 centers completed the survey. The annual volume of surgeries range from 300 to 2000, and IOM is used in 10 -20% of the procedures. In 46% of the cases is a neurologist or a neurophysiologist who performs IOM. For supra-tentorial pathology, almost all perform MEPs (94%) SSEPs (89%), direct cortical stimulation (85%). All centers perform IOM in spinal surgery and 95% in posterior fossa surgery. Among the 50% that perform peripheral nerve surgery, all use IOM. Awake surgery is performed by 70% of centers. The neurosurgeon is the only responsible for IOM in 35% of centers. In 83% of cases IOM implementation is adequate to the request. Discussion and conclusions: The Italian Neurosurgical centers perform IOM with high level of specialization, but differences exist in organization, techniques, and expertise. Our survey provides a snapshot of the state of the art in Italy and it could be a starting point to implement a consensus on the practice of IOM.
Intraoperative neurophysiological monitoring (IONM) is a crucial advancement in neurosurgery, enhancing procedural safety and precision. This technique involves continuous real-time assessment of neurophysiological signals, aiding surgeons in timely interventions to protect neural structures. In addition to inherent limitations, IONM necessitates a detailed anesthetic plan for accurate signal recording. Given the growing importance of IONM in neurosurgery, we conducted a narrative review including the most relevant studies about the modalities and their application in different fields of neurosurgery. In particular, this review provides insights for all physicians and healthcare professionals unfamiliar with IONM, elucidating commonly used techniques in neurosurgery. In particular, it discusses the roles of IONM in various neurosurgical settings such as tumoral brain resection, neurovascular surgery, epilepsy surgery, spinal surgery, and peripheral nerve surgery. Furthermore, it offers an overview of the anesthesiologic strategies and limitations of techniques essential for the effective implementation of IONM.
Purpose: To determine the best predictor of lesion volume induced by magnetic resonance (MR)-guided focused ultrasound (MRgFUS) thalamotomy in patients with tremor-dominant symptoms in Parkinson’s disease (PD) and essential tremor (ET) patients. Methods: Thirty-six neurological patients with medication-refractory tremor (n°19 PD; n°17 ET) were treated using a commercial MRgFUS brain system (Exablate Neuro 4000, Insightec) integrated with a 1.5 T MRI unit (Sigma HDxt; GE Medical System). Linear regression analysis was used to determine how the demographic, clinical, radiological (Fazekas scale), volumetric (total GM/WM/CSF volume, cortical thickness), and MRgFUS-related parameters [Skull Density Ratio (SDR), n° of transducer elements, n° of sonications, skull area, maximal energy delivered (watt), maximal power delivered (joule), maximal sonication time delivered, maximal mean temperature reached (T°C_max), accumulated thermal dose (ATD)] impact on ventral intermediate (VIM)-thalamotomy-related 3D volumetric lesions of necrosis and edema. Results: The VIM thalamotomy was clinically efficacious in improving the tremor symptoms of all the patients as measured at 1 week after treatment. Multiple regression analysis revealed that T°C_max and n° of transducer elements were the best predictors of the necrosis and edema volumes. Moreover, total WM volume also predicted the size of necrosis. Conclusions: Our study provides new insights into the clinical MRgFUS procedures that can be used to forecast brain lesion size and improve treatment outcomes.
Chronic pain, a complex and debilitating condition, poses a significant challenge to both patients and healthcare providers worldwide. Conventional pharmacological interventions often prove inadequate in delivering satisfactory relief while carrying the risks of addiction and adverse reactions. In recent years, electric neuromodulation emerged as a promising alternative in chronic pain management. This method entails the precise administration of electrical stimulation to specific nerves or regions within the central nervous system to regulate pain signals. Through mechanisms that include the alteration of neural activity and the release of endogenous pain-relieving substances, electric neuromodulation can effectively alleviate pain and improve patients' quality of life. Several modalities of electric neuromodulation, with a different grade of invasiveness, provide tailored strategies to tackle various forms and origins of chronic pain. Through an exploration of the anatomical and physiological pathways of chronic pain, encompassing neurotransmitter involvement, this narrative review offers insights into electrical therapies' mechanisms of action, clinical utility, and future perspectives in chronic pain management.
Gliosarcomas (GS) are sporadic malignant tumors classified as a Glioblastoma (GBM) variant with IDH-wild type phenotype. It appears as a well-circumscribed lesion with a biphasic, glial, and metaplastic mesenchymal component. The current knowledge about GS comes from the limited literature. Furthermore, recent studies describe peculiar characteristics of GS, such as hypothesizing that it could be a clinical–pathological entity different from GBM. Here, we review radiological, biomolecular, and clinical data to describe the peculiar characteristics of PGS, treatment options, and outcomes in light of the most recent literature. A comprehensive literature review of PubMed and Web of Science databases was conducted for articles written in English focused on gliosarcoma until 2023. We include relevant data from a few case series and only a single meta-analysis. Recent evidence describes peculiar characteristics of PGS, suggesting that it might be a specific clinical–pathological entity different from GBM. This review facilitates our understanding of this rare malignant brain tumor. However, in the future we recommend multi-center studies and large-scale metanalyses to clarify the biomolecular pathways of PGS to develop new specific therapeutic protocols, different from conventional GBM therapy in light of the new therapeutic opportunities.
Thalamus surgical stereotactic lesioning was used for treatment of different neurological disorders. In last years Magnetic Resonance–guided Focused Ultrasound surgery (MRgFUS) has emerged as noninvasive thermal ablation method, which uses High-Intensity focused ultrasound energy and MRI for anatomical imaging. We carried out a study on use of thalamotomy with MRgFUS in treatment of tremor. Study was done in collaboration between Unit of Functional Neurosurgery of UMG of Catanzaro and IRCCS “Bonino Pulejo” of Messina. Purpose was to demonstrate efficacy in tremor treatment.
The retro-sigmoid approach (RA), widely used during different neurosurgical procedures, is burdened by the risk of injuries of the nerves that cross that region contributing to possible postoperative complications. By using, anatomage table (AT), a novel 3D anatomical visualization system, we described the nerves passing through the retromastoid area including the great occipital nerve (GON), the lesser occipital nerve (LON) and the great auricular nerve (GAN), and their courses from the origins, till terminal branches. Moreover, using dedicated software, we measured distances between the nerves and well-recognizable bony landmarks. After identifying the nerves and their distances from bony landmarks, we observed that the safest and risk-free skin incision should be made in an area delimited, superiorly from the superior nuchal line (or slightly higher), and inferiorly from a plane passing at 1-1.5 cm above the mastoid tip. The lateral aspect of such an area should not exceed 9.5-10 cm from the inion, while the medial one should be more than 7 cm far from the inion. This anatomical information has been useful in defining anatomical landmarks and reducing the risk of complications, mainly related to nerve injury, in RA. In-depth neuroanatomic knowledge of the cutaneous nerves of the retromastoid area is essential to minimize the complications related to their injury during different neurosurgical approaches. Our findings suggest that the AT is a reliable tool to enhance understanding of the anatomy, and thus contributing to the refinement of surgical techniques.
BACKGROUND:Deep brain stimulation (DBS) is a safe and effective treatment for patients with advanced Parkinson's disease (PD) and many neurosurgical centers in Italy have a DBS program. Considering the prevalence of PD and criteria for DBS implantation, about 3200-10,350 PD patients may benefit from DBS in Italy. The global management of patients underwent DBS is complex and it can be supposed that many differences exist between centers in clinical practice. The Italian Neurosurgery Society (SINch) designed this survey to investigate the state of the art of DBS for PD in Italy.METHODS:A 26-item closed-ended question survey was designed and sanded by email at all Italian Neurosurgery centers. The main topic investigated was DBS teams, anatomical target selection, surgical procedure, neuroimaging, intraoperative target localization, DBS device and patients' follow-up.RESULTS:A total of 23 neurosurgery centers completed the survey. There are mainly low-to medium-volume centers (<20 annual DBS procedures) with dedicated DBS teams. The principal anatomical target used is subthalamic nucleus (STN) and, relative to the surgical technique, it emerges that in Italy DBS are bilaterally implanted in a single-step session with awake anesthesia and with frame-based technique. Final leads positioning is defined by microelectrode recordings (MER) and microstimulation (MS), with limited role of intraoperative neuroimaging (MRI and O-Arm). The stimulation is started at 15 or 30 days from procedure.CONCLUSIONS:Many centers of neurosurgery in Italy have a well-established DBS program for patients with advanced PD and some practical differences in technique between centers exist. Further investigation is needed to investigate specific criteria for selecting one technique over another.
Chronic low-back pain (CLBP) is a common disease with several negative consequences on the quality of life, work and activity ability and increased costs to the health-care system. When pharmacological, psychological, physical and occupational therapies or surgery fail to reduce CLBP, patients may be a candidate for Spinal Cord Stimulation (SCS). SCS consists of the transcutaneous or surgical implantation of different types of electrodes in the epidural space; electrodes are then connected to an Implanted Pulse Generator (IPG) that generates stimulating currents. Through spinal and supraspinal mechanisms based on the "gate control theory for pain transmission", SCS reduces symptoms of CLBP in the almost totality of well-selected patients and its effect lasts up to eight years in around 75% of patients. However, the evidence in favor of SCS still remains weak, mainly due to poor trial methodology and design. This narrative review is mainly addressed to those professionals that may encounter patients with CLBP failing conventional treatments. For this reason, we report the mechanisms of pain relief during SCS, the technical features and some clinical considerations about the application of SCS in patients with CLBP.
Falls in a hospital setting are a global public health problem. Despite the production of sensors and various preventive tools to reduce the risk, falls remain a dangerous event with a significant impact on the morbidity and mortality of patients. Despite numerous prevention strategies, falling in the hospital are not always investigated and the autopsy is not always performed in these cases, so it is often not known whether the death is related to the fall or to other causes, inevitably affecting the assessment of any profiles of medical liability for health personnel or for the hospital in the accident. We describe three cases of falls that occurred in different hospitals, in which the autopsy allowed to diagnose with certainty the extent of the trauma and to reconstruct its dynamics. Along with the circumstantial and documentary analyses, deficiencies both in the trauma diagnostics and in the application of the safety measures on the patients were showed. Together with the description of our cases, we propose the post-mortem investigations of these events, both for judicial and risk management purposes.