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1.
Genesis ; 62(3): e23602, 2024 Jun.
Article En | MEDLINE | ID: mdl-38721990

Cilia play a key role in the regulation of signaling pathways required for embryonic development, including the proper formation of the neural tube, the precursor to the brain and spinal cord. Forward genetic screens were used to generate mouse lines that display neural tube defects (NTD) and secondary phenotypes useful in interrogating function. We describe here the L3P mutant line that displays phenotypes of disrupted Sonic hedgehog signaling and affects the initiation of cilia formation. A point mutation was mapped in the L3P line to the gene Rsg1, which encodes a GTPase-like protein. The mutation lies within the GTP-binding pocket and disrupts the highly conserved G1 domain. The mutant protein and other centrosomal and IFT proteins still localize appropriately to the basal body of cilia, suggesting that RSG1 GTPase activity is not required for basal body maturation but is needed for a downstream step in axonemal elongation.


Cilia , Neural Tube Defects , Neural Tube , Animals , Cilia/metabolism , Cilia/genetics , Mice , Neural Tube/metabolism , Neural Tube/embryology , Neural Tube Defects/genetics , Neural Tube Defects/metabolism , Hedgehog Proteins/metabolism , Hedgehog Proteins/genetics , Signal Transduction , Point Mutation
2.
Anat Histol Embryol ; 53(4): e13061, 2024 Jul.
Article En | MEDLINE | ID: mdl-38778674

Present study was conducted to determine the changes in the surface structure of the upper respiratory tract of Siirt-coloured mohair goats by the silicone plastination method. Accordingly, the heads of 10 Siirt-coloured mohair goats procured from slaughterhouses were divided into two halves. Half of each head was plastinated. After macro-comparisons were made, the deformations of silicone plastination on the surface were examined by comparing the scanning electron microscope (SEM) findings of both upper respiratory tract tissue samples collected from plastinates and fresh material. When the data from scanning electron microscopy were analysed, cilia, cobblestone patterns, goblet cells and gland ducts on the epithelial surface were identified in areas on the upper respiratory tract. The SEM images of the plastinated tissues showed that the surface structures were degenerated due to the deformation of the surface epithelium. The plastination technique damaged the structures on the surface epithelium. Since the plastination technique and scanning electron microscopy have been studied together for the first time, we believe this would contribute to the scientific literature.


Goats , Microscopy, Electron, Scanning , Plastination , Animals , Microscopy, Electron, Scanning/veterinary , Goats/anatomy & histology , Respiratory System/ultrastructure , Respiratory System/anatomy & histology , Goblet Cells/ultrastructure , Cilia/ultrastructure
3.
Article En | MEDLINE | ID: mdl-38780290

ABSTRACT: Uterine adenomyosis is an estrogen-dependent chronic inflammatory condition and may cause painful symptoms, abnormal uterine bleeding, and/or subfertility/infertility. It is characterized by the presence of endometrial glands and stroma within the myometrium causing enlargement of the uterus as a result of reactive hyperplastic and/or hypertrophic change of the surrounding myometrium. Similar to endometriosis, adenomyosis has a negative impact on female fertility. Abnormal uterotubal sperm transport, tissue inflammation, and the toxic effect of chemical mediators have been proposed as contributing factors. Inflammation-induced damage of the mucosal cilia in the fallopian tube has been reported. Besides other proposed mechanisms, our most recent study with transmission electron microscopy analysis indicated that microvilli damage and an axonemal alteration in the apical endometria occur in response to endometrial inflammation. This may be involved in the negative fertility outcome in women with adenomyosis. We present a critical analysis of the literature data concerning the mechanistic basis of infertility in women with adenomyosis and its impact on fertility outcome.


Adenomyosis , Endometrium , Infertility, Female , Humans , Female , Adenomyosis/pathology , Adenomyosis/metabolism , Infertility, Female/pathology , Infertility, Female/etiology , Endometrium/pathology , Cilia/pathology , Cilia/ultrastructure , Cilia/metabolism
4.
Life Sci Alliance ; 7(7)2024 Jul.
Article En | MEDLINE | ID: mdl-38719753

We recently reported that growth/differentiation factor 15 (GDF15) and its receptor GDNF family receptor alpha-like (GFRAL) are expressed in the periventricular germinal epithelium thereby regulating apical progenitor proliferation. However, the mechanisms are unknown. We now found GFRAL in primary cilia and altered cilia morphology upon GDF15 ablation. Mutant progenitors also displayed increased histone deacetylase 6 (Hdac6) and ciliary adenylate cyclase 3 (Adcy3) transcript levels. Consistently, microtubule acetylation, endogenous sonic hedgehog (SHH) activation and ciliary ADCY3 were all affected in this group. Application of exogenous GDF15 or pharmacological antagonists of either HDAC6 or ADCY3 similarly normalized ciliary morphology, proliferation and SHH signalling. Notably, Gdf15 ablation affected Hdac6 expression and cilia length only in the mutant periventricular niche, in concomitance with ciliary localization of GFRAL. In contrast, in the hippocampus, where GFRAL was not expressed in the cilium, progenitors displayed altered Adcy3 expression and SHH signalling, but Hdac6 expression, cilia morphology and ciliary ADCY3 levels remained unchanged. Thus, ciliary signalling underlies the effect of GDF15 on primary cilia elongation and proliferation in apical progenitors.


Adenylyl Cyclases , Cell Proliferation , Cilia , Hedgehog Proteins , Histone Deacetylase 6 , Signal Transduction , Animals , Mice , Acetylation , Adenylyl Cyclases/metabolism , Adenylyl Cyclases/genetics , Cell Proliferation/genetics , Cilia/metabolism , Glial Cell Line-Derived Neurotrophic Factor Receptors/metabolism , Glial Cell Line-Derived Neurotrophic Factor Receptors/genetics , Hedgehog Proteins/metabolism , Hedgehog Proteins/genetics , Histone Deacetylase 6/metabolism , Histone Deacetylase 6/genetics , Mice, Knockout , Stem Cells/metabolism , Stem Cells/cytology
5.
J Cell Biol ; 223(9)2024 Sep 02.
Article En | MEDLINE | ID: mdl-38767515

Ciliopathies are often caused by defects in the ciliary microtubule core. Glutamylation is abundant in cilia, and its dysregulation may contribute to ciliopathies and neurodegeneration. Mutation of the deglutamylase CCP1 causes infantile-onset neurodegeneration. In C. elegans, ccpp-1 loss causes age-related ciliary degradation that is suppressed by a mutation in the conserved NEK10 homolog nekl-4. NEKL-4 is absent from cilia, yet it negatively regulates ciliary stability via an unknown, glutamylation-independent mechanism. We show that NEKL-4 was mitochondria-associated. Additionally, nekl-4 mutants had longer mitochondria, a higher baseline mitochondrial oxidation state, and suppressed ccpp-1∆ mutant lifespan extension in response to oxidative stress. A kinase-dead nekl-4(KD) mutant ectopically localized to ccpp-1∆ cilia and rescued degenerating microtubule doublet B-tubules. A nondegradable nekl-4(PEST∆) mutant resembled the ccpp-1∆ mutant with dye-filling defects and B-tubule breaks. The nekl-4(PEST∆) Dyf phenotype was suppressed by mutation in the depolymerizing kinesin-8 KLP-13/KIF19A. We conclude that NEKL-4 influences ciliary stability by activating ciliary kinesins and promoting mitochondrial homeostasis.


Caenorhabditis elegans Proteins , Caenorhabditis elegans , Cilia , Microtubules , Mitochondria , Neurons , Animals , Microtubules/metabolism , Microtubules/genetics , Mitochondria/metabolism , Mitochondria/genetics , Cilia/metabolism , Cilia/genetics , Caenorhabditis elegans/metabolism , Caenorhabditis elegans/genetics , Caenorhabditis elegans Proteins/metabolism , Caenorhabditis elegans Proteins/genetics , Neurons/metabolism , Mutation/genetics
6.
J Cell Biol ; 223(8)2024 Aug 05.
Article En | MEDLINE | ID: mdl-38743010

Basal bodies (BBs) are conserved eukaryotic structures that organize cilia. They are comprised of nine, cylindrically arranged, triplet microtubules (TMTs) connected to each other by inter-TMT linkages which stabilize the structure. Poc1 is a conserved protein important for BB structural integrity in the face of ciliary forces transmitted to BBs. To understand how Poc1 confers BB stability, we identified the precise position of Poc1 in the Tetrahymena BB and the effect of Poc1 loss on BB structure. Poc1 binds at the TMT inner junctions, stabilizing TMTs directly. From this location, Poc1 also stabilizes inter-TMT linkages throughout the BB, including the cartwheel pinhead and the inner scaffold. The full localization of the inner scaffold protein Fam161A requires Poc1. As ciliary forces are increased, Fam161A is reduced, indicative of a force-dependent molecular remodeling of the inner scaffold. Thus, while not essential for BB assembly, Poc1 promotes BB interconnections that establish an architecture competent to resist ciliary forces.


Basal Bodies , Cilia , Microtubules , Protozoan Proteins , Tetrahymena thermophila , Basal Bodies/metabolism , Cilia/metabolism , Microtubule-Associated Proteins/metabolism , Microtubule-Associated Proteins/genetics , Microtubules/metabolism , Protein Binding , Protozoan Proteins/metabolism , Protozoan Proteins/genetics , Tetrahymena thermophila/metabolism , Tetrahymena thermophila/genetics
7.
Nat Commun ; 15(1): 4316, 2024 May 21.
Article En | MEDLINE | ID: mdl-38773095

As signalling organelles, cilia regulate their G protein-coupled receptor content by ectocytosis, a process requiring localised actin dynamics to alter membrane shape. Photoreceptor outer segments comprise an expanse of folded membranes (discs) at the tip of highly-specialised connecting cilia, into which photosensitive GPCRs are concentrated. Discs are shed and remade daily. Defects in this process, due to mutations, cause retinitis pigmentosa (RP). Whilst fundamental for vision, the mechanism of photoreceptor disc generation is poorly understood. Here, we show membrane deformation required for disc genesis is driven by dynamic actin changes in a process akin to ectocytosis. We show RPGR, a leading RP gene, regulates actin-binding protein activity central to this process. Actin dynamics, required for disc formation, are perturbed in Rpgr mouse models, leading to aborted membrane shedding as ectosome-like vesicles, photoreceptor death and visual loss. Actin manipulation partially rescues this, suggesting the pathway could be targeted therapeutically. These findings help define how actin-mediated dynamics control outer segment turnover.


Actins , Eye Proteins , Retinitis Pigmentosa , Animals , Actins/metabolism , Mice , Retinitis Pigmentosa/metabolism , Retinitis Pigmentosa/genetics , Eye Proteins/metabolism , Eye Proteins/genetics , Cilia/metabolism , Humans , Retinal Photoreceptor Cell Outer Segment/metabolism , Mice, Knockout , Mice, Inbred C57BL , Cell Membrane/metabolism
8.
PLoS Biol ; 22(5): e3002596, 2024 May.
Article En | MEDLINE | ID: mdl-38718086

Autism spectrum disorders (ASD) frequently accompany macrocephaly, which often involves hydrocephalic enlargement of brain ventricles. Katnal2 is a microtubule-regulatory protein strongly linked to ASD, but it remains unclear whether Katnal2 knockout (KO) in mice leads to microtubule- and ASD-related molecular, synaptic, brain, and behavioral phenotypes. We found that Katnal2-KO mice display ASD-like social communication deficits and age-dependent progressive ventricular enlargements. The latter involves increased length and beating frequency of motile cilia on ependymal cells lining ventricles. Katnal2-KO hippocampal neurons surrounded by enlarged lateral ventricles show progressive synaptic deficits that correlate with ASD-like transcriptomic changes involving synaptic gene down-regulation. Importantly, early postnatal Katnal2 re-expression prevents ciliary, ventricular, and behavioral phenotypes in Katnal2-KO adults, suggesting a causal relationship and a potential treatment. Therefore, Katnal2 negatively regulates ependymal ciliary function and its deletion in mice leads to ependymal ciliary hyperfunction and hydrocephalus accompanying ASD-related behavioral, synaptic, and transcriptomic changes.


Autism Spectrum Disorder , Cilia , Ependyma , Mice, Knockout , Phenotype , Animals , Male , Mice , Autism Spectrum Disorder/genetics , Autism Spectrum Disorder/metabolism , Autism Spectrum Disorder/physiopathology , Behavior, Animal , Cilia/metabolism , Disease Models, Animal , Ependyma/metabolism , Hippocampus/metabolism , Hydrocephalus/genetics , Hydrocephalus/metabolism , Hydrocephalus/pathology , Hydrocephalus/physiopathology , Katanin/metabolism , Katanin/genetics , Mice, Inbred C57BL , Neurons/metabolism , Synapses/metabolism , Transcriptome/genetics
9.
Nat Commun ; 15(1): 3698, 2024 May 01.
Article En | MEDLINE | ID: mdl-38693102

Mouse models of autosomal dominant polycystic kidney disease (ADPKD) show that intact primary cilia are required for cyst growth following the inactivation of polycystin-1. The signaling pathways underlying this process, termed cilia-dependent cyst activation (CDCA), remain unknown. Using translating ribosome affinity purification RNASeq on mouse kidneys with polycystin-1 and cilia inactivation before cyst formation, we identify the differential 'CDCA pattern' translatome specifically dysregulated in kidney tubule cells destined to form cysts. From this, Glis2 emerges as a candidate functional effector of polycystin signaling and CDCA. In vitro changes in Glis2 expression mirror the polycystin- and cilia-dependent changes observed in kidney tissue, validating Glis2 as a cell culture-based indicator of polycystin function related to cyst formation. Inactivation of Glis2 suppresses polycystic kidney disease in mouse models of ADPKD, and pharmacological targeting of Glis2 with antisense oligonucleotides slows disease progression. Glis2 transcript and protein is a functional target of CDCA and a potential therapeutic target for treating ADPKD.


Cilia , Disease Models, Animal , Polycystic Kidney, Autosomal Dominant , Signal Transduction , TRPP Cation Channels , Animals , Humans , Male , Mice , Cilia/metabolism , Kidney/metabolism , Kidney/pathology , Mice, Inbred C57BL , Mice, Knockout , Oligonucleotides, Antisense/pharmacology , Polycystic Kidney Diseases/metabolism , Polycystic Kidney Diseases/genetics , Polycystic Kidney Diseases/pathology , Polycystic Kidney, Autosomal Dominant/metabolism , Polycystic Kidney, Autosomal Dominant/genetics , Polycystic Kidney, Autosomal Dominant/pathology , Polycystic Kidney, Autosomal Dominant/drug therapy , TRPP Cation Channels/metabolism , TRPP Cation Channels/genetics
10.
J Cell Sci ; 137(20)2024 Oct 15.
Article En | MEDLINE | ID: mdl-38804679

The definitive demonstration of protein localization on primary cilia has been a challenge for cilia biologists. Primary cilia are solitary thread-like projections that have a specialized protein composition, but as the ciliary structure overlays the cell membrane and other cell parts, the identity of ciliary proteins are difficult to ascertain by conventional imaging approaches like immunofluorescence microscopy. Surface scanning electron microscopy combined with immunolabeling (immuno-SEM) bypasses some of these indeterminacies by unambiguously showing protein expression in the context of the three-dimensional ultrastructure of the cilium. Here, we apply immuno-SEM to specifically identify proteins on the primary cilia of mouse and human pancreatic islets, including post-translationally modified tubulin, intraflagellar transport (IFT)88, the small GTPase Arl13b, as well as subunits of axonemal dynein. Key parameters in sample preparation, immunolabeling and imaging acquisition are discussed to facilitate similar studies by others in the cilia research community.


Cilia , Islets of Langerhans , Cilia/ultrastructure , Cilia/metabolism , Animals , Humans , Mice , Islets of Langerhans/ultrastructure , Islets of Langerhans/metabolism , Microscopy, Electron, Scanning/methods
11.
BMC Med Genomics ; 17(1): 106, 2024 Apr 26.
Article En | MEDLINE | ID: mdl-38671463

BACKGROUND: Syndromic ciliopathies are a group of congenital disorders characterized by broad clinical and genetic overlap, including obesity, visual problems, skeletal anomalies, mental retardation, and renal diseases. The hallmark of the pathophysiology among these disorders is defective ciliary functions or formation. Many different genes have been implicated in the pathogenesis of these diseases, but some patients still remain unclear about their genotypes. METHODS: The aim of this study was to identify the genetic causes in patients with syndromic ciliopathy. Patients suspected of or meeting clinical diagnostic criteria for any type of syndromic ciliopathy were recruited at a single diagnostic medical center in Southern Taiwan. Whole exome sequencing (WES) was employed to identify their genotypes and elucidate the mutation spectrum in Taiwanese patients with syndromic ciliopathy. Clinical information was collected at the time of patient enrollment. RESULTS: A total of 14 cases were molecularly diagnosed with syndromic ciliopathy. Among these cases, 10 had Bardet-Biedl syndrome (BBS), comprising eight BBS2 patients and two BBS7 patients. Additionally, two cases were diagnosed with Alström syndrome, one with Oral-facial-digital syndrome type 14, and another with Joubert syndrome type 10. A total of 4 novel variants were identified. A recurrent splice site mutation, BBS2: c.534 + 1G > T, was present in all eight BBS2 patients, suggesting a founder effect. One BBS2 patient with homozygous c.534 + 1G > T mutations carried a third ciliopathic allele, TTC21B: c.264_267dupTAGA, a nonsense mutation resulting in a premature stop codon and protein truncation. CONCLUSIONS: Whole exome sequencing (WES) assists in identifying molecular pathogenic variants in ciliopathic patients, as well as the genetic hotspot mutations in specific populations. It should be considered as the first-line genetic testing for heterogeneous disorders characterized by the involvement of multiple genes and diverse clinical manifestations.


Cerebellum/abnormalities , Ciliopathies , Kidney Diseases, Cystic , Proteins , Retina/abnormalities , Humans , Male , Female , Taiwan , Ciliopathies/genetics , Child , Child, Preschool , Mutation , Exome Sequencing , Bardet-Biedl Syndrome/genetics , Adolescent , Infant , Abnormalities, Multiple/genetics , Retina/pathology , Syndrome , Cilia/pathology , Cilia/genetics , Eye Abnormalities/genetics
12.
Int J Mol Sci ; 25(8)2024 Apr 10.
Article En | MEDLINE | ID: mdl-38673782

Mesenchymal stem cells (MSC) attract an increasing amount of attention due to their unique therapeutic properties. Yet, MSC can undergo undesirable genetic and epigenetic changes during their propagation in vitro. In this study, we investigated whether polyploidy can compromise MSC oncological safety and therapeutic properties. For this purpose, we compared the impact of polyploidy on the transcriptome of cancer cells and MSC of various origins (bone marrow, placenta, and heart). First, we identified genes that are consistently ploidy-induced or ploidy-repressed through all comparisons. Then, we selected the master regulators using the protein interaction enrichment analysis (PIEA). The obtained ploidy-related gene signatures were verified using the data gained from polyploid and diploid populations of early cardiomyocytes (CARD) originating from iPSC. The multistep bioinformatic analysis applied to the cancer cells, MSC, and CARD indicated that polyploidy plays a pivotal role in driving the cell into hypertranscription. It was evident from the upregulation of gene modules implicated in housekeeping functions, stemness, unicellularity, DNA repair, and chromatin opening by means of histone acetylation operating via DNA damage associated with the NUA4/TIP60 complex. These features were complemented by the activation of the pathways implicated in centrosome maintenance and ciliogenesis and by the impairment of the pathways related to apoptosis, the circadian clock, and immunity. Overall, our findings suggest that, although polyploidy does not induce oncologic transformation of MSC, it might compromise their therapeutic properties because of global epigenetic changes and alterations in fundamental biological processes. The obtained results can contribute to the development and implementation of approaches enhancing the therapeutic properties of MSC by removing polyploid cells from the cell population.


Apoptosis , Mesenchymal Stem Cells , Polyploidy , Transcriptome , Mesenchymal Stem Cells/metabolism , Mesenchymal Stem Cells/cytology , Humans , Apoptosis/genetics , Neoplasms/genetics , Neoplasms/pathology , Neoplasms/metabolism , Cilia/metabolism , Cilia/genetics , Computer Simulation , Female , Gene Expression Profiling , Epigenesis, Genetic , Myocytes, Cardiac/metabolism , Myocytes, Cardiac/cytology , Gene Expression Regulation, Neoplastic , Cell Line, Tumor , Computational Biology/methods
13.
FASEB J ; 38(8): e23606, 2024 Apr 30.
Article En | MEDLINE | ID: mdl-38648465

Rhodopsin mislocalization encompasses various blind conditions. Rhodopsin mislocalization is the primary factor leading to rod photoreceptor dysfunction and degeneration in autosomal dominant retinitis pigmentosa (adRP) caused by class I mutations. In this study, we report a new knock-in mouse model that harbors a class I Q344X mutation in the endogenous rhodopsin gene, which causes rod photoreceptor degeneration in an autosomal dominant pattern. In RhoQ344X/+ mice, mRNA transcripts from the wild-type (Rho) and RhoQ344X mutant rhodopsin alleles are expressed at equal levels. However, the amount of RHOQ344X mutant protein is 2.7 times lower than that of wild-type rhodopsin, a finding consistent with the rapid degradation of the mutant protein. Immunofluorescence microscopy indicates that RHOQ344X is mislocalized to the inner segment and outer nuclear layers of rod photoreceptors in both RhoQ344X/+ and RhoQ344X/Q344X mice, confirming the essential role of the C-terminal VxPx motif in promoting OS delivery of rhodopsin. The mislocalization of RHOQ344X is associated with the concurrent mislocalization of wild-type rhodopsin in RhoQ344X/+ mice. To understand the global changes in proteostasis, we conducted quantitative proteomics analysis and found attenuated expression of rod-specific OS membrane proteins accompanying reduced expression of ciliopathy causative gene products, including constituents of BBSome and axonemal dynein subunit. Those studies unveil a novel negative feedback regulation involving ciliopathy-associated proteins. In this process, a defect in the trafficking signal leads to a reduced quantity of the trafficking apparatus, culminating in a widespread reduction in the transport of ciliary proteins.


Disease Models, Animal , Gene Knock-In Techniques , Retinal Rod Photoreceptor Cells , Retinitis Pigmentosa , Rhodopsin , Animals , Rhodopsin/metabolism , Rhodopsin/genetics , Retinitis Pigmentosa/metabolism , Retinitis Pigmentosa/genetics , Retinitis Pigmentosa/pathology , Mice , Retinal Rod Photoreceptor Cells/metabolism , Retinal Rod Photoreceptor Cells/pathology , Cilia/metabolism , Cilia/pathology
14.
J Cell Sci ; 137(9)2024 May 01.
Article En | MEDLINE | ID: mdl-38661008

DPF3, along with other subunits, is a well-known component of the BAF chromatin remodeling complex, which plays a key role in regulating chromatin remodeling activity and gene expression. Here, we elucidated a non-canonical localization and role for DPF3. We showed that DPF3 dynamically localizes to the centriolar satellites in interphase and to the centrosome, spindle midzone and bridging fiber area, and midbodies during mitosis. Loss of DPF3 causes kinetochore fiber instability, unstable kinetochore-microtubule attachment and defects in chromosome alignment, resulting in altered mitotic progression, cell death and genomic instability. In addition, we also demonstrated that DPF3 localizes to centriolar satellites at the base of primary cilia and is required for ciliogenesis by regulating axoneme extension. Taken together, these findings uncover a moonlighting dual function for DPF3 during mitosis and ciliogenesis.


Centrioles , Cilia , Kinetochores , Mitosis , Transcription Factors , Cilia/metabolism , Humans , Centrioles/metabolism , Transcription Factors/metabolism , Transcription Factors/genetics , Kinetochores/metabolism , DNA-Binding Proteins/metabolism , DNA-Binding Proteins/genetics , Animals , Mice , Genomic Instability , Centrosome/metabolism , Spindle Apparatus/metabolism , HeLa Cells , Axoneme/metabolism
15.
Mol Biol Cell ; 35(6): ar82, 2024 Jun 01.
Article En | MEDLINE | ID: mdl-38630521

Stathmins are small, unstructured proteins that bind tubulin dimers and are implicated in several human diseases, but whose function remains unknown. We characterized a new stathmin, STMND1 (Stathmin Domain Containing 1) as the human representative of an ancient subfamily. STMND1 features a N-terminal myristoylated and palmitoylated motif which directs it to membranes and a tubulin-binding stathmin-like domain (SLD) that contains an internal nuclear localization signal. Biochemistry and proximity labeling showed that STMND1 binds tubulin, and live imaging showed that tubulin binding inhibits translocation from cellular membranes to the nucleus. STMND1 is highly expressed in multiciliated epithelial cells, where it localizes to motile cilia. Overexpression in a model system increased the length of primary cilia. Our study suggests that the most ancient stathmins have cilium-related functions that involve sensing soluble tubulin.


Cell Nucleus , Cilia , Stathmin , Tubulin , Cilia/metabolism , Tubulin/metabolism , Humans , Stathmin/metabolism , Cell Nucleus/metabolism , Phylogeny , Protein Binding , Nuclear Localization Signals/metabolism , Animals , Epithelial Cells/metabolism , Protein Transport , Amino Acid Sequence
16.
Front Immunol ; 15: 1318316, 2024.
Article En | MEDLINE | ID: mdl-38605967

Background: Nonspecific orbital inflammation (NSOI) represents a perplexing and persistent proliferative inflammatory disorder of idiopathic nature, characterized by a heterogeneous lymphoid infiltration within the orbital region. This condition, marked by the aberrant metabolic activities of its cellular constituents, starkly contrasts with the metabolic equilibrium found in healthy cells. Among the myriad pathways integral to cellular metabolism, purine metabolism emerges as a critical player, providing the building blocks for nucleic acid synthesis, such as DNA and RNA. Despite its significance, the contribution of Purine Metabolism Genes (PMGs) to the pathophysiological landscape of NSOI remains a mystery, highlighting a critical gap in our understanding of the disease's molecular underpinnings. Methods: To bridge this knowledge gap, our study embarked on an exploratory journey to identify and validate PMGs implicated in NSOI, employing a comprehensive bioinformatics strategy. By intersecting differential gene expression analyses with a curated list of 92 known PMGs, we aimed to pinpoint those with potential roles in NSOI. Advanced methodologies, including Gene Set Enrichment Analysis (GSEA) and Gene Set Variation Analysis (GSVA), facilitated a deep dive into the biological functions and pathways associated with these PMGs. Further refinement through Lasso regression and Support Vector Machine-Recursive Feature Elimination (SVM-RFE) enabled the identification of key hub genes and the evaluation of their diagnostic prowess for NSOI. Additionally, the relationship between these hub PMGs and relevant clinical parameters was thoroughly investigated. To corroborate our findings, we analyzed expression data from datasets GSE58331 and GSE105149, focusing on the seven PMGs identified as potentially crucial to NSOI pathology. Results: Our investigation unveiled seven PMGs (ENTPD1, POLR2K, NPR2, PDE6D, PDE6H, PDE4B, and ALLC) as intimately connected to NSOI. Functional analyses shed light on their involvement in processes such as peroxisome targeting sequence binding, seminiferous tubule development, and ciliary transition zone organization. Importantly, the diagnostic capabilities of these PMGs demonstrated promising efficacy in distinguishing NSOI from non-affected states. Conclusions: Through rigorous bioinformatics analyses, this study unveils seven PMGs as novel biomarker candidates for NSOI, elucidating their potential roles in the disease's pathogenesis. These discoveries not only enhance our understanding of NSOI at the molecular level but also pave the way for innovative approaches to monitor and study its progression, offering a beacon of hope for individuals afflicted by this enigmatic condition.


Cilia , Computational Biology , Humans , Homeostasis , Immunotherapy , Purines
17.
Cells ; 13(7)2024 Mar 24.
Article En | MEDLINE | ID: mdl-38607006

Primary ciliary dyskinesia (PCD) is an inherited disorder that impairs motile cilia, essential for respiratory health, with a reported prevalence of 1 in 16,309 within Hispanic populations. Despite 70% of Puerto Rican patients having the RSPH4A [c.921+3_921+6del (intronic)] founder mutation, the characterization of the ciliary dysfunction remains unidentified due to the unavailability of advanced diagnostic modalities like High-Speed Video Microscopy Analysis (HSVA). Our study implemented HSVA for the first time on the island as a tool to better diagnose and characterize the RSPH4A [c.921+3_921+6del (intronic)] founder mutation in Puerto Rican patients. By applying HSVA, we analyzed the ciliary beat frequency (CBF) and pattern (CBP) in native Puerto Rican patients with PCD. Our results showed decreased CBF and a rotational CBP linked to the RSPH4A founder mutation in Puerto Ricans, presenting a novel diagnostic marker that could be implemented as an axillary test into the PCD diagnosis algorithm in Puerto Rico. The integration of HSVA technology in Puerto Rico substantially enhances the PCD evaluation and diagnosis framework, facilitating prompt detection and early intervention for improved disease management. This initiative, demonstrating the potential of HSVA as an adjunctive test within the PCD diagnostic algorithm, could serve as a blueprint for analogous developments throughout Latin America.


Kartagener Syndrome , Humans , Algorithms , Cilia/pathology , Hispanic or Latino , Kartagener Syndrome/diagnosis , Kartagener Syndrome/genetics , Microscopy, Video
18.
Nat Commun ; 15(1): 3365, 2024 Apr 25.
Article En | MEDLINE | ID: mdl-38664376

Hedgehog (Hh) signaling relies on the primary cilium, a cell surface organelle that serves as a signaling hub for the cell. Using proximity labeling and quantitative proteomics, we identify Numb as a ciliary protein that positively regulates Hh signaling. Numb localizes to the ciliary pocket and acts as an endocytic adaptor to incorporate Ptch1 into clathrin-coated vesicles, thereby promoting Ptch1 exit from the cilium, a key step in Hh signaling activation. Numb loss impedes Sonic hedgehog (Shh)-induced Ptch1 exit from the cilium, resulting in reduced Hh signaling. Numb loss in spinal neural progenitors reduces Shh-induced differentiation into cell fates reliant on high Hh activity. Genetic ablation of Numb in the developing cerebellum impairs the proliferation of granule cell precursors, a Hh-dependent process, resulting in reduced cerebellar size. This study highlights Numb as a regulator of ciliary Ptch1 levels during Hh signal activation and demonstrates the key role of ciliary pocket-mediated endocytosis in cell signaling.


Cerebellum , Cilia , Hedgehog Proteins , Nerve Tissue Proteins , Patched-1 Receptor , Signal Transduction , Hedgehog Proteins/metabolism , Hedgehog Proteins/genetics , Cilia/metabolism , Animals , Patched-1 Receptor/metabolism , Patched-1 Receptor/genetics , Mice , Nerve Tissue Proteins/metabolism , Nerve Tissue Proteins/genetics , Cerebellum/metabolism , Membrane Proteins/metabolism , Membrane Proteins/genetics , Humans , Endocytosis , Cell Differentiation , Cell Proliferation , Neural Stem Cells/metabolism , Neural Stem Cells/cytology , Mice, Knockout
19.
Nat Commun ; 15(1): 3456, 2024 Apr 24.
Article En | MEDLINE | ID: mdl-38658528

Intraflagellar transport (IFT) orchestrates entry of proteins into primary cilia. At the ciliary base, assembled IFT trains, driven by kinesin-2 motors, can transport cargo proteins into the cilium, across the crowded transition zone. How trains assemble at the base and how proteins associate with them is far from understood. Here, we use single-molecule imaging in the cilia of C. elegans chemosensory neurons to directly visualize the entry of kinesin-2 motors, kinesin-II and OSM-3, as well as anterograde cargo proteins, IFT dynein and tubulin. Single-particle tracking shows that IFT components associate with trains sequentially, both in time and space. Super-resolution maps of IFT components in wild-type and mutant worms reveal ciliary ultrastructure and show that kinesin-II is essential for axonemal organization. Finally, imaging cilia lacking kinesin-II and/or transition zone function uncovers the interplay of kinesin-II and OSM-3 in driving efficient transport of IFT trains across the transition zone.


Caenorhabditis elegans Proteins , Caenorhabditis elegans , Cilia , Kinesins , Caenorhabditis elegans/metabolism , Animals , Cilia/metabolism , Cilia/ultrastructure , Caenorhabditis elegans Proteins/metabolism , Caenorhabditis elegans Proteins/genetics , Kinesins/metabolism , Kinesins/genetics , Flagella/metabolism , Flagella/ultrastructure , Tubulin/metabolism , Axoneme/metabolism , Axoneme/ultrastructure , Dyneins/metabolism , Biological Transport , Single Molecule Imaging , Protein Transport
20.
Trends Neurosci ; 47(5): 383-394, 2024 May.
Article En | MEDLINE | ID: mdl-38580512

Cilia are fascinating organelles that act as cellular antennae, sensing the cellular environment. Cilia gained significant attention in the late 1990s after their dysfunction was linked to genetic diseases known as ciliopathies. Since then, several breakthrough discoveries have uncovered the mechanisms underlying cilia biogenesis and function. Like most cells in the animal kingdom, neurons also harbor cilia, which are enriched in neuromodulatory receptors. Yet, how neuronal cilia modulate neuronal physiology and animal behavior remains poorly understood. By comparing ciliary biology between the sensory and central nervous systems (CNS), we provide new perspectives on the functions of cilia in brain physiology.


Cilia , Neurons , Cilia/physiology , Animals , Humans , Neurons/physiology , Brain/physiology
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