Pluvinage, J. V. & Wyss-Coray, T. Systemic elements as mediators of mind homeostasis, ageing and neurodegeneration. Nat. Rev. Neurosci. 21, 93–102 (2020).
Google Scholar
Castellano, J. M. et al. Human umbilical twine plasma proteins revitalize hippocampal operate in aged mice. Nature 544, 488–492 (2017).
Google Scholar
Villeda, S. A. et al. Younger blood reverses age-related impairments in cognitive operate and synaptic plasticity in mice. Nat. Med. 20, 659–663 (2014).
Google Scholar
Lehtinen, M. Okay. et al. The cerebrospinal fluid offers a proliferative area of interest for neural progenitor cells. Neuron 69, 893–905 (2011).
Google Scholar
Silva-Vargas, V., Maldonado-Soto, A. R., Mizrak, D., Codega, P. & Doetsch, F. Age-dependent area of interest indicators from the choroid plexus regulate grownup neural stem cells. Cell Stem Cell 19, 643–652 (2016).
Google Scholar
Fame, R. M. & Lehtinen, M. Okay. Emergence and developmental roles of the cerebrospinal fluid system. Dev. Cell 52, 261–275 (2020).
Google Scholar
Chen, C. P., Chen, R. L. & Preston, J. E. The affect of ageing within the cerebrospinal fluid concentrations of proteins which can be derived from the choroid plexus, mind, and plasma. Exp. Gerontol. 47, 323–328 (2012).
Google Scholar
Baird, G. S. et al. Age-dependent adjustments within the cerebrospinal fluid proteome by sluggish off-rate modified aptamer array. Am. J. Pathol. 180, 446–456 (2012).
Google Scholar
Li, G. et al. Cerebrospinal fluid focus of brain-derived neurotrophic issue and cognitive operate in non-demented topics. PLoS ONE 4, e5424 (2009).
Google Scholar
Pan, S., Mayoral, S. R., Choi, H. S., Chan, J. R. & Kheirbek, M. A. Preservation of a distant worry reminiscence requires new myelin formation. Nat. Neurosci. 23, 487–499 (2020).
Google Scholar
Vetere, G. et al. Chemogenetic interrogation of a brain-wide worry reminiscence community in mice. Neuron 94, 363–374 (2017).
Google Scholar
Fogel, S. M. et al. fMRI and sleep correlates of the age-related impairment in motor reminiscence consolidation. Hum. Mind Mapp. 35, 3625–3645 (2014).
Google Scholar
Gibson, E. M. et al. Neuronal exercise promotes oligodendrogenesis and adaptive myelination within the mammalian mind. Science 344, 1252304 (2014).
Google Scholar
Dugas, J. C. & Emery, B. Purification of oligodendrocyte precursor cells from rat cortices by immunopanning. Chilly Spring Harb. Protoc. 2013, 745–758 (2013).
Google Scholar
Solar, L. O. et al. Spatiotemporal management of CNS myelination by oligodendrocyte programmed cell dying by the TFEB–PUMA axis. Cell 175, 1811–1826 (2018).
Google Scholar
Zuchero, J. B. et al. CNS myelin wrapping is pushed by actin disassembly. Dev. Cell 34, 152–167 (2015).
Google Scholar
Schwarz, N. et al. Human cerebrospinal fluid promotes long-term neuronal viability and community operate in human neocortical organotypic mind slice cultures. Sci. Rep. 7, 12249 (2017).
Google Scholar
Wentling, M. et al. A metabolic perspective on CSF-mediated neurodegeneration in a number of sclerosis. Mind 142, 2756–2774 (2019).
Google Scholar
Mathur, D. et al. Bioenergetic failure in rat oligodendrocyte progenitor cells handled with cerebrospinal fluid derived from a number of sclerosis sufferers. Entrance. Cell. Neurosci. 11, 209 (2017).
Google Scholar
Braun, T. & Gautel, M. Transcriptional mechanisms regulating skeletal muscle differentiation, development and homeostasis. Nat. Rev. Mol. Cell Biol. 12, 349–361 (2011).
Google Scholar
Guo, Y. et al. Hierarchical and stage-specific regulation of murine cardiomyocyte maturation by serum response issue. Nat. Commun. 9, 3837 (2018).
Google Scholar
Knoll, B. & Nordheim, A. Purposeful versatility of transcription elements within the nervous system: the SRF paradigm. Traits Neurosci. 32, 432–442 (2009).
Google Scholar
Miralles, F., Posern, G., Zaromytidou, A. I. & Treisman, R. Actin dynamics management SRF exercise by regulation of its coactivator MAL. Cell 113, 329–342 (2003).
Google Scholar
Knoll, B. et al. Serum response issue controls neuronal circuit meeting within the hippocampus. Nat. Neurosci. 9, 195–204 (2006).
Google Scholar
Lahoute, C. et al. Untimely ageing in skeletal muscle missing serum response issue. PLoS ONE 3, e3910 (2008).
Google Scholar
Mergoud Dit Lamarche, A. et al. UNC-120/SRF independently controls muscle ageing and lifespan in Caenorhabditis elegans. Getting older Cell 17, e12713 (2018).
Google Scholar
Ximerakis, M. et al. Single-cell transcriptomic profiling of the ageing mouse mind. Nat. Neurosci. 22, 1696–1708 (2019).
Google Scholar
Falcao, A. M. et al. Illness-specific oligodendrocyte lineage cells come up in a number of sclerosis. Nat. Med. 24, 1837–1844 (2018).
Google Scholar
Iacono, G., Altafini, C. & Torre, V. Early part of plasticity-related gene regulation and SRF dependent transcription within the hippocampus. PLoS ONE 8, e68078 (2013).
Google Scholar
Kuzniewska, B. et al. Mind-derived neurotrophic issue induces matrix metalloproteinase 9 expression in neurons through the serum response issue/c-Fos pathway. Mol. Cell. Biol. 33, 2149–2162 (2013).
Google Scholar
Sasayama, D. et al. Genome-wide quantitative trait loci mapping of the human cerebrospinal fluid proteome. Hum. Mol. Genet. 26, 44–51 (2017).
Google Scholar
Sathyan, S. et al. Plasma proteomic profile of age, well being span, and all-cause mortality in older adults. Getting older Cell 19, e13250 (2020).
Google Scholar
Esnault, C. et al. Rho–actin signaling to the MRTF coactivators dominates the fast transcriptional response to serum in fibroblasts. Genes Dev. 28, 943–958 (2014).
Google Scholar
Fortin, D., Rom, E., Solar, H., Yayon, A. & Bansal, R. Distinct fibroblast development issue (FGF)/FGF receptor signaling pairs provoke numerous mobile responses within the oligodendrocyte lineage. J. Neurosci. 25, 7470–7479 (2005).
Google Scholar
Ramanan, N. et al. SRF mediates activity-induced gene expression and synaptic plasticity however not neuronal viability. Nat. Neurosci. 8, 759–767 (2005).
Google Scholar
Etkin, A. et al. A task in studying for SRF: deletion within the grownup forebrain disrupts LTD and the formation of a direct reminiscence of a novel context. Neuron 50, 127–143 (2006).
Google Scholar
Pan, S., Mayoral, S. R., Choi, H. S., Chan, J. R. & Kheirbek, M. A. Preservation of a distant worry reminiscence requires new myelin formation. Nat. Neurosci. 23, 487–499 (2020).
Google Scholar
Xiao, L. et al. Fast manufacturing of latest oligodendrocytes is required within the earliest levels of motor-skill studying. Nat. Neurosci. 19, 1210–1217 (2016).
Google Scholar
Steadman, P. E. et al. Disruption of oligodendrogenesis impairs reminiscence consolidation in grownup mice. Neuron 105, 150–164 (2020).
Google Scholar
Wang, F. et al. Myelin degeneration and diminished myelin renewal contribute to age-related deficits in reminiscence. Nat. Neurosci. 23, 481–486 (2020).
Google Scholar
Chen, J. F. et al. Enhancing myelin renewal reverses cognitive dysfunction in a murine mannequin of Alzheimer’s illness. Neuron 109, 2292–2307 (2021).
Google Scholar
Segel, M. et al. Area of interest stiffness underlies the ageing of central nervous system progenitor cells. Nature 573, 130–134 (2019).
Google Scholar
Neumann, B. et al. Metformin restores CNS remyelination capability by rejuvenating aged stem cells. Cell Stem Cell 25, 473–485 (2019).
Google Scholar
Bonetto, G., Belin, D. & Karadottir, R. T. Myelin: a gatekeeper of activity-dependent circuit plasticity? Science 374, eaba6905 (2021).
Google Scholar
Xu, J., Liu, Z. & Ornitz, D. M. Temporal and spatial gradients of Fgf8 and Fgf17 regulate proliferation and differentiation of midline cerebellar buildings. Improvement 127, 1833–1843 (2000).
Google Scholar
Furusho, M., Ishii, A., Hebert, J. M. & Bansal, R. Developmental stage-specific position of Frs adapters as mediators of FGF receptor signaling within the oligodendrocyte lineage cells. Glia 68, 617–630 (2020).
Google Scholar
Oh, L. Y. et al. Fibroblast development issue receptor 3 signaling regulates the onset of oligodendrocyte terminal differentiation. J. Neurosci. 23, 883–894 (2003).
Google Scholar
Kang, W., Nguyen, Okay. C. Q. & Hebert, J. M. Transient redirection of SVZ stem cells to oligodendrogenesis by FGFR3 activation promotes remyelination. Stem Cell Rep. 12, 1223–1231 (2019).
Google Scholar
Jen, Y. H., Musacchio, M. & Lander, A. D. Glypican-1 controls mind measurement by regulation of fibroblast development issue signaling in early neurogenesis. Neural Dev. 4, 33 (2009).
Google Scholar
Scearce-Levie, Okay. et al. Irregular social behaviors in mice missing Fgf17. Genes Mind Behav. 7, 344–354 (2008).
Google Scholar
De Miguel, Z. et al. Train plasma boosts reminiscence and dampens mind irritation through clusterin. Nature 600, 494–499 (2021).
Google Scholar
Liu, L. & Duff, Okay. A way for serial assortment of cerebrospinal fluid from the cisterna magna in mouse. J. Vis. Exp. https://doi.org/10.3791/960 (2008).
Smith, A., Wu, A. H., Lynch, Okay. L., Ko, N. & Grenache, D. G. Multi-wavelength spectrophotometric evaluation for detection of xanthochromia in cerebrospinal fluid and accuracy for the analysis of subarachnoid hemorrhage. Clin. Chim. Acta 424, 231–236 (2013).
Google Scholar
Olsson, M., Arlig, J., Hedner, J., Blennow, Okay. & Zetterberg, H. Sleep deprivation and cerebrospinal fluid biomarkers for Alzheimer’s illness. Sleep https://doi.org/10.1093/sleep/zsy025 (2018).
Olsson, M., Arlig, J., Hedner, J., Blennow, Okay. & Zetterberg, H. Sleep deprivation and plasma biomarkers for Alzheimer’s illness. Sleep Med. 57, 92–93 (2019).
Google Scholar
Lynch, H. J., Rivest, R. W. & Wurtman, R. J. Synthetic induction of melatonin rhythms by programmed microinfusion. Neuroendocrinology 31, 106–111 (1980).
Google Scholar
Pluvinage, J. V. et al. CD22 blockade restores homeostatic microglial phagocytosis in ageing brains. Nature 568, 187–192 (2019).
Google Scholar
Lukinavicius, G. et al. Fluorogenic probes for live-cell imaging of the cytoskeleton. Nat. Strategies 11, 731–733 (2014).
Google Scholar
Friedman, P. L. & Ellisman, M. H. Enhanced visualization of peripheral nerve and sensory receptors within the scanning electron microscope utilizing cryofracture and osmium–thiocarbohydrazide–osmium impregnation. J. Neurocytol. 10, 111–131 (1981).
Google Scholar
Willingham, M. C. & Rutherford, A. V. The usage of osmium–thiocarbohydrazide–osmium (OTO) and ferrocyanide-reduced osmium strategies to reinforce membrane distinction and preservation in cultured cells. J. Histochem. Cytochem. 32, 455–460 (1984).
Google Scholar
Ewald, A. J. et al. Mammary collective cell migration entails transient lack of epithelial options and particular person cell migration inside the epithelium. J. Cell Sci. 125, 2638–2654 (2012).
Google Scholar
McDonald, Okay. L. & Webb, R. I. Freeze substitution in 3 hours or much less. J. Microsc. 243, 227–233 (2011).
Google Scholar
Emery, B. & Dugas, J. C. Purification of oligodendrocyte lineage cells from mouse cortices by immunopanning. Chilly Spring Harb. Protoc. 2013, 854–868 (2013).
Google Scholar
Muhar, M. et al. SLAM-seq defines direct gene-regulatory capabilities of the BRD4–MYC axis. Science 360, 800–805 (2018).
Google Scholar
Stockel, D. et al. Multi-omics enrichment evaluation utilizing the GeneTrail2 net service. Bioinformatics 32, 1502–1508 (2016).
Google Scholar
Hahn, O. et al. CoolMPS for strong sequencing of single-nuclear RNAs captured by droplet-based technique. Nucleic Acids Res. 49, e11 (2021).
Google Scholar
Newman, A. M. et al. Figuring out cell sort abundance and expression from bulk tissues with digital cytometry. Nat. Biotechnol. 37, 773–782 (2019).
Google Scholar
Steen, C. B., Liu, C. L., Alizadeh, A. A. & Newman, A. M. Profiling cell sort abundance and expression in bulk tissues with CIBERSORTx. Strategies Mol. Biol. 2117, 135–157 (2020).
Google Scholar
Wolf, F. A., Angerer, P. & Theis, F. J. SCANPY: large-scale single-cell gene expression knowledge evaluation. Genome Biol. 19, 15 (2018).
Google Scholar
Schaum, N. et al. Ageing hallmarks exhibit organ-specific temporal signatures. Nature 583, 596–602 (2020).
Google Scholar
Spitzer, S. O. et al. Oligodendrocyte progenitor cells grow to be regionally numerous and heterogeneous with age. Neuron 101, 459–471 (2019).
Google Scholar
Mathys, H. et al. Single-cell transcriptomic evaluation of Alzheimer’s illness. Nature 570, 332–337 (2019).
Google Scholar
Zhou, Y. et al. Human and mouse single-nucleus transcriptomics reveal TREM2-dependent and TREM2-independent mobile responses in Alzheimer’s illness. Nat. Med. 26, 131–142 (2020).
Google Scholar
The Tabula Muris Consortium. A single-cell transcriptomic atlas characterizes ageing tissues within the mouse. Nature 583, 590–595 (2020).
Matys, V. et al. TRANSFAC and its module TRANSCompel: transcriptional gene regulation in eukaryotes. Nucleic Acids Res. 34, D108–D110 (2006).
Google Scholar
Gerstner, N. et al. GeneTrail 3: superior high-throughput enrichment evaluation. Nucleic Acids Res. 48, W515–W520 (2020).
Google Scholar