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1.
Nature ; 586(7828): 281-286, 2020 10.
Article in English | MEDLINE | ID: mdl-32968276

ABSTRACT

'Dysbiosis' of the maternal gut microbiome, in response to challenges such as infection1, altered diet2 and stress3 during pregnancy, has been increasingly associated with abnormalities in brain function and behaviour of the offspring4. However, it is unclear whether the maternal gut microbiome influences neurodevelopment during critical prenatal periods and in the absence of environmental challenges. Here we investigate how depletion and selective reconstitution of the maternal gut microbiome influences fetal neurodevelopment in mice. Embryos from antibiotic-treated and germ-free dams exhibited reduced brain expression of genes related to axonogenesis, deficient thalamocortical axons and impaired outgrowth of thalamic axons in response to cell-extrinsic factors. Gnotobiotic colonization of microbiome-depleted dams with a limited consortium of bacteria prevented abnormalities in fetal brain gene expression and thalamocortical axonogenesis. Metabolomic profiling revealed that the maternal microbiome regulates numerous small molecules in the maternal serum and the brains of fetal offspring. Select microbiota-dependent metabolites promoted axon outgrowth from fetal thalamic explants. Moreover, maternal supplementation with these metabolites abrogated deficiencies in fetal thalamocortical axons. Manipulation of the maternal microbiome and microbial metabolites during pregnancy yielded adult offspring with altered tactile sensitivity in two aversive somatosensory behavioural tasks, but no overt differences in many other sensorimotor behaviours. Together, our findings show that the maternal gut microbiome promotes fetal thalamocortical axonogenesis, probably through signalling by microbially modulated metabolites to neurons in the developing brain.


Subject(s)
Brain/embryology , Brain/metabolism , Dysbiosis/microbiology , Fetus/embryology , Fetus/metabolism , Gastrointestinal Microbiome/physiology , Mothers , Animals , Axons/metabolism , Brain/cytology , Cerebral Cortex/cytology , Cerebral Cortex/embryology , Cerebral Cortex/metabolism , Computer Simulation , Dysbiosis/blood , Dysbiosis/pathology , Female , Fetus/cytology , Male , Mice , Mice, Inbred C57BL , Pregnancy , Pregnancy Complications/blood , Pregnancy Complications/microbiology , Pregnancy Complications/pathology , Principal Component Analysis , Thalamus/cytology , Thalamus/embryology , Thalamus/metabolism
3.
Nature ; 531(7594): 323-8, 2016 Mar 17.
Article in English | MEDLINE | ID: mdl-26958831

ABSTRACT

The repair and regeneration of tissues using endogenous stem cells represents an ultimate goal in regenerative medicine. To our knowledge, human lens regeneration has not yet been demonstrated. Currently, the only treatment for cataracts, the leading cause of blindness worldwide, is to extract the cataractous lens and implant an artificial intraocular lens. However, this procedure poses notable risks of complications. Here we isolate lens epithelial stem/progenitor cells (LECs) in mammals and show that Pax6 and Bmi1 are required for LEC renewal. We design a surgical method of cataract removal that preserves endogenous LECs and achieves functional lens regeneration in rabbits and macaques, as well as in human infants with cataracts. Our method differs conceptually from current practice, as it preserves endogenous LECs and their natural environment maximally, and regenerates lenses with visual function. Our approach demonstrates a novel treatment strategy for cataracts and provides a new paradigm for tissue regeneration using endogenous stem cells.


Subject(s)
Cataract/therapy , Lens, Crystalline/cytology , Lens, Crystalline/physiology , Recovery of Function , Regeneration/physiology , Stem Cells/cytology , Vision, Ocular/physiology , Animals , Cataract/congenital , Cataract/pathology , Cataract/physiopathology , Cataract Extraction , Epithelial Cells/cytology , Epithelial Cells/metabolism , Eye Proteins/metabolism , Homeodomain Proteins/metabolism , Homeostasis , Humans , Macaca , PAX6 Transcription Factor , Paired Box Transcription Factors/metabolism , Polycomb Repressive Complex 1/metabolism , Proto-Oncogene Proteins/metabolism , Repressor Proteins/metabolism , Stem Cells/metabolism
5.
Nature ; 523(7562): 607-11, 2015 Jul 30.
Article in English | MEDLINE | ID: mdl-26200341

ABSTRACT

The human lens is comprised largely of crystallin proteins assembled into a highly ordered, interactive macro-structure essential for lens transparency and refractive index. Any disruption of intra- or inter-protein interactions will alter this delicate structure, exposing hydrophobic surfaces, with consequent protein aggregation and cataract formation. Cataracts are the most common cause of blindness worldwide, affecting tens of millions of people, and currently the only treatment is surgical removal of cataractous lenses. The precise mechanisms by which lens proteins both prevent aggregation and maintain lens transparency are largely unknown. Lanosterol is an amphipathic molecule enriched in the lens. It is synthesized by lanosterol synthase (LSS) in a key cyclization reaction of a cholesterol synthesis pathway. Here we identify two distinct homozygous LSS missense mutations (W581R and G588S) in two families with extensive congenital cataracts. Both of these mutations affect highly conserved amino acid residues and impair key catalytic functions of LSS. Engineered expression of wild-type, but not mutant, LSS prevents intracellular protein aggregation of various cataract-causing mutant crystallins. Treatment by lanosterol, but not cholesterol, significantly decreased preformed protein aggregates both in vitro and in cell-transfection experiments. We further show that lanosterol treatment could reduce cataract severity and increase transparency in dissected rabbit cataractous lenses in vitro and cataract severity in vivo in dogs. Our study identifies lanosterol as a key molecule in the prevention of lens protein aggregation and points to a novel strategy for cataract prevention and treatment.


Subject(s)
Cataract/drug therapy , Cataract/metabolism , Lanosterol/pharmacology , Lanosterol/therapeutic use , Protein Aggregates/drug effects , Protein Aggregation, Pathological/drug therapy , Adult , Amino Acid Sequence , Amyloid/chemistry , Amyloid/drug effects , Amyloid/metabolism , Amyloid/ultrastructure , Animals , Base Sequence , Cataract/congenital , Cataract/genetics , Cataract/pathology , Cell Line , Child , Crystallins/chemistry , Crystallins/genetics , Crystallins/metabolism , Crystallins/ultrastructure , Dogs , Female , Humans , Lanosterol/administration & dosage , Lens, Crystalline/drug effects , Lens, Crystalline/metabolism , Lens, Crystalline/pathology , Male , Models, Molecular , Molecular Sequence Data , Mutant Proteins/chemistry , Mutant Proteins/genetics , Mutant Proteins/metabolism , Mutant Proteins/ultrastructure , Pedigree , Protein Aggregation, Pathological/pathology
6.
J Biol Chem ; 289(10): 6362-6371, 2014 Mar 07.
Article in English | MEDLINE | ID: mdl-24407289

ABSTRACT

Cell transplantation is a potential therapeutic strategy for retinal degenerative diseases involving the loss of photoreceptors. However, it faces challenges to clinical translation due to safety concerns and a limited supply of cells. Human retinal progenitor cells (hRPCs) from fetal neural retina are expandable in vitro and maintain an undifferentiated state. This study aimed to investigate the therapeutic potential of hRPCs transplanted into a Royal College of Surgeons (RCS) rat model of retinal degeneration. At 12 weeks, optokinetic response showed that hRPC-grafted eyes had significantly superior visual acuity compared with vehicle-treated eyes. Histological evaluation of outer nuclear layer (ONL) characteristics such as ONL thickness, spread distance, and cell count demonstrated a significantly greater preservation of the ONL in hRPC-treated eyes compared with both vehicle-treated and control eyes. The transplanted hRPCs arrested visual decline over time in the RCS rat and rescued retinal morphology, demonstrating their potential as a therapy for retinal diseases. We suggest that the preservation of visual acuity was likely achieved through host photoreceptor rescue. We found that hRPC transplantation into the subretinal space of RCS rats was well tolerated, with no adverse effects such as tumor formation noted at 12 weeks after treatment.


Subject(s)
Embryonic Stem Cells/transplantation , Pigment Epithelium of Eye/transplantation , Retina , Retinal Degeneration/surgery , Stem Cell Transplantation , Animals , Cell Separation , Cells, Cultured , Disease Models, Animal , Fetus/cytology , Humans , Rats , Retina/cytology , Retina/embryology , Retina/physiology , Retinal Degeneration/physiopathology , Visual Acuity
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