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1.
Front Cell Neurosci ; 17: 1199518, 2023.
Article in English | MEDLINE | ID: covidwho-2301891
2.
Bmj ; 379, 2022.
Article in English | ProQuest Central | ID: covidwho-2152959

ABSTRACT

Among 3000 people with hypertension inadequately controlled by medication, who were treated with renal denervation, there were sustained reductions in systolic blood pressure and fewer major cardiovascular events over 36 months of follow-up (J Am Coll Cardiol doi:10.1016/j.jacc.2022.08.802). PACE labels Ten worksite cafeterias in England were randomised in the order in which they introduced labels containing information about physical activity calorie equivalents (PACE labels) on selected food and drinks. Experiments in transgenic mice and in cell culture now link the APOE gene with faulty lipid processing in oligodendrocytes.

3.
Front Neurosci ; 16: 1002010, 2022.
Article in English | MEDLINE | ID: covidwho-2022808
4.
Cell ; 185(14): 2452-2468.e16, 2022 07 07.
Article in English | MEDLINE | ID: covidwho-1885669

ABSTRACT

COVID survivors frequently experience lingering neurological symptoms that resemble cancer-therapy-related cognitive impairment, a syndrome for which white matter microglial reactivity and consequent neural dysregulation is central. Here, we explored the neurobiological effects of respiratory SARS-CoV-2 infection and found white-matter-selective microglial reactivity in mice and humans. Following mild respiratory COVID in mice, persistently impaired hippocampal neurogenesis, decreased oligodendrocytes, and myelin loss were evident together with elevated CSF cytokines/chemokines including CCL11. Systemic CCL11 administration specifically caused hippocampal microglial reactivity and impaired neurogenesis. Concordantly, humans with lasting cognitive symptoms post-COVID exhibit elevated CCL11 levels. Compared with SARS-CoV-2, mild respiratory influenza in mice caused similar patterns of white-matter-selective microglial reactivity, oligodendrocyte loss, impaired neurogenesis, and elevated CCL11 at early time points, but after influenza, only elevated CCL11 and hippocampal pathology persisted. These findings illustrate similar neuropathophysiology after cancer therapy and respiratory SARS-CoV-2 infection which may contribute to cognitive impairment following even mild COVID.


Subject(s)
COVID-19 , Influenza, Human , Neoplasms , Animals , Humans , Influenza, Human/pathology , Mice , Microglia/pathology , Myelin Sheath , Neoplasms/pathology , SARS-CoV-2
5.
Front Cell Neurosci ; 16: 888232, 2022.
Article in English | MEDLINE | ID: covidwho-1834470

ABSTRACT

Although myalgic encephalomyelitis/chronic fatigue syndrome (ME/CFS) has a specific and distinctive profile of clinical features, the disease remains an enigma because causal explanation of the pathobiological matrix is lacking. Several potential disease mechanisms have been identified, including immune abnormalities, inflammatory activation, mitochondrial alterations, endothelial and muscular disturbances, cardiovascular anomalies, and dysfunction of the peripheral and central nervous systems. Yet, it remains unclear whether and how these pathways may be related and orchestrated. Here we explore the hypothesis that a common denominator of the pathobiological processes in ME/CFS may be central nervous system dysfunction due to impaired or pathologically reactive neuroglia (astrocytes, microglia and oligodendrocytes). We will test this hypothesis by reviewing, in reference to the current literature, the two most salient and widely accepted features of ME/CFS, and by investigating how these might be linked to dysfunctional neuroglia. From this review we conclude that the multifaceted pathobiology of ME/CFS may be attributable in a unifying manner to neuroglial dysfunction. Because the two key features - post exertional malaise and decreased cerebral blood flow - are also recognized in a subset of patients with post-acute sequelae COVID, we suggest that our findings may also be pertinent to this entity.

7.
Cells ; 10(7)2021 06 30.
Article in English | MEDLINE | ID: covidwho-1323123

ABSTRACT

Ischemic stroke is the second cause of mortality and the first cause of long-term disability constituting a serious socioeconomic burden worldwide. Approved treatments include thrombectomy and rtPA intravenous administration, which, despite their efficacy in some cases, are not suitable for a great proportion of patients. Glial cell-related therapies are progressively overcoming inefficient neuron-centered approaches in the preclinical phase. Exploiting the ability of microglia to naturally switch between detrimental and protective phenotypes represents a promising therapeutic treatment, in a similar way to what happens with astrocytes. However, the duality present in many of the roles of these cells upon ischemia poses a notorious difficulty in disentangling the precise pathways to target. Still, promoting M2/A2 microglia/astrocyte protective phenotypes and inhibiting M1/A1 neurotoxic profiles is globally rendering promising results in different in vivo models of stroke. On the other hand, described oligodendrogenesis after brain ischemia seems to be strictly beneficial, although these cells are the less studied players in the stroke paradigm and negative effects could be described for oligodendrocytes in the next years. Here, we review recent advances in understanding the precise role of mentioned glial cell types in the main pathological events of ischemic stroke, including inflammation, blood brain barrier integrity, excitotoxicity, reactive oxygen species management, metabolic support, and neurogenesis, among others, with a special attention to tested therapeutic approaches.


Subject(s)
Brain Ischemia/therapy , Neuroglia/physiology , Reperfusion Injury/therapy , Animals , Blood-Brain Barrier/pathology , Humans , Neurogenesis , Oxidative Stress
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