Search PubMedSearch

SEARCH · Search PubMed

Results for “Hox genes”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 19 recordsLinked to original sources

A Simple Method to Analyze Context- and Tissue-Specific Cis-Regulatory Modulations of Homeotic (HOX) Genes Using ChIP.

Homeobox genes (HOX), the master regulators, deploy a unique set of target genes to coordinate and orchestrate the spatiotemporal development of an organism. HOX encoded transcriptional factors regulate the expression of target genes by binding to the specific sequences on the genome. Chromatin Immunoprecipitation (ChIP) and Chromatin Immunoprecipitation with Sequencing (ChIP-Seq) are widely used to map and understand specific gene locus and global regulatory regions on the genome. ChIP is a powerful technique of cross-linking the proteins bound to the DNA, fragmenting DNA to the desired size, and pulling them down using specific antibodies to enrich and analyze the protein-bound DNA. Based on the mapping information, a differential ChIP can be performed to understand cis-regulatory modulations at a defined locus by two developmental stages. This chapter describes the differential ChIP used to identify new targets by comparing two different developmental stages simultaneously using Drosophila melanogaster.

Animals

Investigating the Functions of Hox Genes Using Planarian Asexual Reproduction.

Hox genes are highly conserved developmental regulators instrumental to the formation of a wide range of diverse body plans across metazoans. While significant progress in the field of Hox gene research has been made, persistent challenges in unraveling their mechanisms of action and full repertoire of functions remain. To date, investigations of Hox gene function have been primarily conducted in research models belonging to ecdysozoa and vertebrata. Herein we summarize recent findings on Hox genes' roles in the asexual reproduction of the regenerative flatworm planaria, a member of the understudied superphylum Spiralia. We detail our optimized methods for planarian culture, gene perturbation, and induction of asexual reproduction. We aim to provide an experimentally tractable means to dissect Hox gene adult tissue functions underlying planarian asexual reproduction with broader relevance to Hox genes' established and emerging roles in regulating cellular behaviors, developmental patterning, animal behavior, and tissue regeneration.

Animals

Biology of Hox Genes: Questions and Technological Challenges.

Hox genes are crucial in determining segmentation identity in developing embryos, which ultimately sets an anteroposterior body axis. Over a century of research has discovered the fundamentals of the Hox gene and protein function in animal development and diseases. However, there are still fundamental questions about the specificity of HOX function. This chapter discusses many unknowns about Hox genes and how modern technologies can overcome technical limitations. We have also addressed these questions to gain a better understanding of the roles of these genes.

Animals

Exploring Hox Genes and Their Temporal Expression in an Embryonic Model of Freshwater Crustaceans.

Hox genes have been investigated in various Arthropod species, resulting in the identification of ten Hox genes, organized in a colinear arrangement within the genome. Among arthropods, crustaceans exhibit a remarkable diversity of body shapes, which are associated with a variety of egg types, embryonic development patterns, and importantly, with the modulation of Hox genes to specify the identity of body segments along the antero-posterior axis of the embryo. Although there are more than 52,000 species of crustaceans described, their genomic resources are relatively limited, making it challenging to employ several molecular tools for studying embryonic development. In this regard, we present a protocol for identifying Hox genes in a freshwater prawn using degenerate primers and transcriptome analysis. This method enables the study of specific functions of Hox genes, thereby contributing to the evolutionary understanding of the diversity of body shapes in crustaceans.

Animals

Studying the Role of HOX Genes in Thrombocyte Development.

In our laboratory, we study thrombopoiesis and hemostasis using zebrafish as a model organism to unravel the mechanisms of differentiation and development of thrombocytes. We have shown in our earlier work that thrombocytes are functional equivalents of platelets and have transcriptional machinery similar to megakaryocytes. We recently found evidence that hox genes play a role in their development. We used piggyback gene knockdown and thrombocyte quantification assays to understand the influence of these ancient developmental regulators on thrombopoiesis. In this chapter, we describe methods used to discover these hox genes.

Animals

Spatial Genomic Approaches to Investigate HOX Genes in Mouse Brain Tissues.

Spatial transcriptomic tools are an upcoming and powerful way to investigate targeted gene expression patterns within tissues. These tools offer the unique advantage of visualizing and understanding gene expression while preserving tissue integrity, thereby maintaining the spatial context of genes. Curio is a robust spatial transcriptomic tool that facilitates high throughput comprehensive spatial gene expression analysis across the entir e transcriptome with high efficiency. Here, we present a bioinformatics protocol for performing whole transcriptome gene expression analysis of mouse brain tissue using Curio. Specifically, we demonstrate using computational techniques to visualize expression patterns of various HOX genes in the mouse brain.

Animals

Teleost Hox code defines regional identities competent for the formation of dorsal and anal fins.

The dorsal and anal fins can vary widely in position and length along the anterior-posterior axis in teleost fishes. However, the molecular mechanisms underlying the diversification of these fins remain unknown. Here, we used genetic approaches in zebrafish and medaka, in which the relative positions of the dorsal and anal fins are opposite, to demonstrate the crucial role of hox genes in the patterning of the teleost posterior body, including the dorsal and anal fins. By the CRISPR-Cas9-induced frameshift mutations and positional cloning of spontaneous dorsalfinless medaka, we show that various hox mutants exhibit the absence of dorsal or anal fins, or a stepwise posterior extension of these fins, with vertebral abnormalities. Our results indicate that multiple hox genes, primarily from hoxc-related clusters, encompass the regions responsible for the dorsal and anal fin formation along the anterior-posterior axis. These results further suggest that shifts in the anterior boundaries of hox expression which vary among fish species, lead to diversification in the position and size of the dorsal and anal fins, similar to how modulations in Hox expression can alter the number of anatomically distinct vertebrae in tetrapods. Furthermore, we show that hox genes responsible for dorsal fin formation are different between zebrafish and medaka. Our results suggest that a novel mechanism has occurred during teleost evolution, in which the gene network responsible for fin formation might have switched to the regulation downstream of other hox genes, leading to the remarkable diversity in the dorsal fin position.

Animals

Capturing Chromatin Organization by MNase-seq and ATAC-seq.

Hox genes play a pivotal role during development. Their expression is tightly controlled in a spatiotemporal manner, ensuring that specific body structures develop at the correct locations and times during development. Various genomics approaches have been used to capture temporal and dynamic regulation of Hox gene expression at the nucleosome/chromatin level. This chapter focuses on the utilization of capture MNase-seq and Assay for Transposase-Accessible Chromatin using sequencing (ATAC-seq), two advanced techniques that enable the exploration of chromatin accessibility and nucleosome positioning within these critical genomic regions.

Chromatin

Generation of Hoxa11-3XFLAG and Hoxd11-3XFLAG alleles to investigate Hox11 genome-wide binding.

Hox genes encode for evolutionary conserved transcription factors that direct the proper development of the body plan. Despite decades of research, little is known regarding their downstream target genes, especially in vertebrates. The strong evolutionary conservation of their DNA-binding homeodomain, their generic AT-rich binding sites, and the lack of specific antibodies has precluded rigorous examination. To circumvent these limitations, we have generated two mouse models in which a 3XFLAG epitope tag has been inserted into the 5' end of the coding sequence of both Hoxa11 and Hoxd11 loci via Cas9/CRISPR. The alleles have been validated by sequencing, PCR genotyping, western blotting, and protein expression analyses, demonstrating proper targeting and expression. Breeding these alleles in combination produces viable and fertile Hoxa11FLAG/FLAG; Hoxd11FLAG/FLAG animals, with no overt patterning defects unlike Hoxa11/Hoxd11 mutants that are infertile and have severe kidney and limb defects. By performing CUT&RUN and CUT&Tag analyses, we have confirmed DNA binding to a known Six2 enhancer in the developing kidney. These novel alleles will allow characterization of the genome-wide binding profile of Hox11 proteins in vivo.

Animals

How to Study Gene Expression and Gain of Function of Hoxb1 in Mouse Heart Development.

Anterior Hox genes are required for genetic identity and anterior posterior patterning of the second heart field (SHF), which contributes to the formation of the embryonic heart in vertebrates. Defective contribution of SHF cells to the arterial or venous pole of the heart is often associated with severe congenital heart defects. The mouse Cre-lox system allows the activation of expression of any gene of interest in restricted tissues. We developed a gain of function approach that relies on the use of a CAG transgene to ectopically activate Hoxb1 expression in SHF cardiac progenitor cells through specific Cre activation. Therefore, we generated a floxed transgenic mouse line, CAG-Hoxb1-eGFP, which upon recombination by Cre recombinase conditionally induces robust Hoxb1 and eGFP expression. When induced within the anterior SHF lineage, we detected heart defects in mouse embryos such as right ventricular hypoplasia. Here, we describe the strategy for generating and genetically crossing this transgenic mouse line. We also provide detailed protocols for whole-mount embryo and paraffin section in situ RNAscope hybridization and X-gal staining allowing investigation of SHF contribution during heart development.

Animals

A Cis-Regulatory Duplication in a Hox Hotspot Implicated in Mimetic Convergence in the Bumble Bee Bombus flavifrons.

Several species of North American bumble bees spanning the Pacific Coastal and Rocky Mountain regions converge onto distinct mimetic abdominal colour forms for each region by switching abdominal coloration from black to red. Previous genome-wide association studies (GWAS) of red and black transitions in two mimics (Bombus melanopygus and Bombus vancouverensis) revealed that black forms were generated by independently deleting a portion of the same cis-regulatory region near the Hox gene Abdominal-B (Abd-B). Here, we test the genetic basis of these mimetic colour forms in a third co-mimic, Bombus flavifrons, that has continuous variation in red and black that is shifted posteriorly one segment compared to its co-mimics. Using genome-wide association of red and black forms, we identified a structural variant <&#x2009;50&#x2009;bp away from the deletions in B. melanopygus and B. vancouverensis that was strongly associated with the colour phenotype. Sequencing across mimicry zones and closely related taxa revealed that all red forms of B. flavifrons and monomorphic red close relative Bombus centralis have a 319&#x2009;bp tandem duplication at this locus that has extensive modification to the duplicated copy. Black forms of B. flavifrons from the Cascades also have this duplication but without the modifications, while black forms in the western Rockies mostly lack this duplication, similar to ancestral black forms. This suggests independent mechanisms may regulate the black phenotypes in different populations and that ancestral sorting of variation and/or adaptive introgression generated these phenotypes. This study strengthens support for this Abd-B cis-regulatory region being a hotspot for regulating abdominal coloration in bumble bees, and features the role of regulatory region duplication in creating novel phenotypes.

Animals

Re-arranging the Cis-regulatory Modules of Hox Complex in Drosophila via FLP-FRT and CRISPR/Cas9.

FLP-FRT, a well-established technique for genome manipulation, and the revolutionary CRISPR/Cas9, known for its targeted indels, are combined in a novel approach. This unique method is applied to the Hox genes in the Drosophila melanogaster bithorax complex, which are closely located to the cis-regulatory modules that define their spatial-temporal regulation. The number and position of these genes are directly correlated to their expression pattern. This chapter unveils the exciting potential of this combinatorial use of FLP-FRT and CRISPR-Cas9 to rearrange the cis-regulatory modules of the Hox complex in Drosophila melanogaster.

Animals

The genomic origin of the unique chaetognath body plan.

The emergence of animal phyla, each with their unique body plan, was a rapid event in the history of animal life, yet its genomic underpinnings are still poorly understood1. Here we investigate at the genomic, regulatory and cellular levels, the origin of one of the most distinctive animal phyla, the chaetognaths, whose organismal characteristics have historically complicated their phylogenetic placement2,3. We show that these characteristics are reflected at the cell-type level by the expression of genes that originated in the chaetognath lineage, contributing to adaptation to planktonic life at the sensory and structural levels4. Similarly to other members of gnathiferans (which also include rotifers and several other microscopic phyla)5,6, chaetognaths have undergone accelerated genomic evolution with gene loss and chromosomal fusions7,8. Furthermore, they secondarily duplicated thousands of genes9,10, without evidence for a whole-genome duplication, yielding, for instance, tandemly expanded Hox genes, as well as many phylum-specific genes. We also detected repeat-rich highly methylated neocentromeres and a simplified DNA methylation toolkit that is involved in mobile element repression rather than transcriptional control. Consistent with fossil evidence11,12, our observations suggest that chaetognaths emerged after a phase of morphological simplification through a reinvention of organ systems paralleled by massive genomic reorganization, explaining the uniqueness of their body plan.

Animals

A Hox-dependent anchoring mechanism mediates transcriptional repression of autophagy-related genes at the nuclear periphery.

The spatial organization of the genome within the nucleus is critical for gene regulation, yet the mechanisms by which transcription factors (TFs) orchestrate this process remain poorly understood. Here, we demonstrate that the Drosophila Hox protein Ultrabithorax (Ubx) represses autophagy-related (atg) genes by tethering their loci to the nuclear periphery. This repressive activity relies on the interaction with the nuclear lamina component Lamin-C (LamC). Furthermore, we identify that DNA-binding of Ubx is determinant for both the physical interaction with nucleoplasmic LamC and the repression of atg genes in vivo. Together, our findings reveal a mechanism whereby a Hox TF functions as a spatial anchor, positioning target genes within a LamC-rich nuclear compartment to ensure efficient transcriptional repression.

Animals

Screening for dual sgRNAs with comparable indel efficiencies enhances CRISPR-mediated large-fragment deletion.

CRISPR-mediated large-fragment deletion provides a powerful approach for gene clusters, noncoding regions and structural variants, but its broader application is limited by low and variable deletion efficiency. Here, we systematically designed and evaluated 78 sgRNAs targeting nine representative gene clusters (ttn.1-ttn.2 cluster, 7 hox clusters and nppb-nppa cluster), containing 31 large fragments (5 kb-340 kb) to investigate the determinants of deletion efficiency. We found two key rules for achieving high deletion efficiency: (i) using dual sgRNAs with similar indel efficiencies, and (ii) applying a single sgRNA pair rather than multiple sgRNAs. Based on those rules, a 340 kb deletion is detected in the progenies of 95% of founders. Whereas the deletion size showed no significant linear correlation with deletion efficiency within the tested range. Implementing these rules resulted in an average of 70% of founders transmitting deletions across all tested sgRNA pairs. Therefore, screening sgRNAs can effectively enhance CRISPR utility in deletions, thereby facilitating the application of genomic manipulation in vertebrates and other species.

CRISPR

Hox/Meis-dependent gene-regulatory transition underlies cardiopharyngeal neural crest diversification.

Neural crest cells (NCCs) are multipotent migratory cells essential for cardiac development, yet the lineage trajectories and gene regulatory networks underlying their differentiation in the cardiopharyngeal region remain unclear. Here, we integrate single-cell RNA-seq, spatial transcriptomics, and multiomic analyses to construct a comprehensive map of NCC lineages in developing mouse cardiopharyngeal tissues. We identify a transition from Hox-positive pharyngeal NCCs to Hox-negative intracardiac populations associated with the outflow tract cushion, accompanied by a shift in Meis transcription factor binding and gene-regulatory network architecture. By contrast, NCCs forming the aorticopulmonary septum and great vessel smooth muscle retain distinct Hox-codes. A Meis2-Sox9-Scx gene-regulatory network defines a skeletogenic progenitor-like intermediate state that gives rise to coronary artery smooth muscle and semilunar valves. Our findings suggest that the loss of Hox-dependent regional identity enables pharyngeal NCCs to acquire new fates upon entering the cardiac cushion, providing insight into the developmental origins of coronary and valvular calcification.

Journal Article

PAHG: the database of human multi-gene families.

BACKGROUND: In the early vertebrate history, gene duplications, including single-gene, segmental-gene (SSD), and whole-genome duplication (WGD), formed multigene families. Despite efforts to classify metazoan multigene families hierarchically for evolutionary insight, a gap exists in accessible, curated resources for human/vertebrate multigene families. RESULTS: Addressing this, we present the Phylogenomic Analysis of Human Genome (PAHG) database. It focuses on curated multigene families in the human genome, particularly within four paralogons: HOX-bearing (Hsa:2/7/12/17), FGFR-bearing (Hsa:4/5/8/10), MHC-bearing (Hsa:1/6/9/19), and chromosomes 1/2/8/20. CONCLUSION: The current PAHG version details the phylogenetic history of 221 human multigene families (1247 gene members) with 15,231 protein sequences from diverse metazoans. It provides insights into gene duplication timings, co-duplication events, and their relationships with human genome syntenic organization. The PAHG database addresses the lack of accessible resources, offering valuable information on human/vertebrate multigene family evolution. Access the PAHG database at: https://www.pahgncb.com/ and http://pahg.qau.edu.pk/ . This resource enriches our understanding of vertebrate genetic evolution.

Humans

The gastropod Lottia peitaihoensis as a model to study the body patterning of trochophore larvae.

The body patterning of trochophore larvae is important for understanding spiralian evolution and the origin of the bilateral body plan. However, considerable variations are observed among spiralian lineages, which have adopted varied strategies to develop trochophore larvae or even omit a trochophore stage. Some spiralians, such as patellogastropod mollusks, are suggested to exhibit ancestral traits by producing equal-cleaving fertilized eggs and possessing "typical" trochophore larvae. In recent years, we developed a potential model system using the patellogastropod Lottia peitaihoensis (= Lottia goshimai). Here, we introduce how the species were selected and establish sources and techniques, including gene knockdown, ectopic gene expression, and genome editing. Investigations on this species reveal essential aspects of trochophore body patterning, including organizer signaling, molecular and cellular processes connecting the various developmental functions of the organizer, the specification and behaviors of the endomesoderm and ectomesoderm, and the characteristic dorsoventral decoupling of Hox expression. These findings enrich the knowledge of trochophore body patterning and have important implications regarding the evolution of spiralians as well as bilateral body plans.

Animals