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N Iwabe

Publications and source records attributed to N Iwabe.

At least 19 recordsLinked to original sources

Extensive gene duplication in the early evolution of animals before the parazoan-eumetazoan split demonstrated by G proteins and protein tyrosine kinases from sponge and hydra.

To know whether genes involved in cell-cell communication typical of multicellular animals dramatically increased in concert with the Cambrian explosion, the rapid evolutionary burst in the major groups of animals, and whether these genes exist in the sponge lacking cell cohesiveness and coordination typical of eumetazoans, we have carried out cloning of the G-protein alpha subunit (Galpha) and the protein tyrosine kinase (PTK) cDNAs from Ephydatia fluviatilis (freshwater sponge) and Hydra magnipapillata strain 105 (hydra). We obtained 13 Galpha and 20 PTK cDNAs. Generally animal gene families diverged first by gene duplication (subtype duplication) that gave rise to diverse subtypes with different primary functions, followed by further gene duplication in the same subtype (isoform duplication) that gave rise to isoform genes with virtually identical function. Phylogenetic trees of Galpha and PTK families including cDNAs from sponge and hydra revealed that most of the present-day subtypes had been established in the very early evolution of animals before the parazoan-eumetazoan split, the earliest branching among the extant animal phyla, by extensive subtype duplication: for PTK and Galpha families, 23 and 9 subtype duplications were observed in the early stage before the parazoan-eumetazoan split, respectively, and after that split, only 2 and 1 subtype duplications were found, respectively. After the separation from arthropods, vertebrates underwent frequent isoform duplications before the fish-tetrapod split. Furthermore, rapid amino acid changes appear to have occurred in concert with the extensive subtype duplication and isoform duplication. Thus the pattern of gene diversification during animal evolution might be characterized by bursts of gene duplication interrupted by considerably long periods of silence, instead of proceeding gradually, and there might be no direct link between the Cambrian explosion and the extensive gene duplication that generated diverse functions (subtypes) of these families.

Amino Acid Substitution↗

Multiple protein tyrosine phosphatases in sponges and explosive gene duplication in the early evolution of animals before the parazoan-eumetazoan split.

Protein tyrosine phosphatases (PTPs) regulate various physiological events in animal cells. They comprise a diverse family which are classified into two categories, receptor type and nonreceptor type. From the domain organization and phylogenetic tree, we have classified known PTPs into 17 subtypes (9 receptor-type and 8 nonreceptor-type PTPs) which are characterized by different organization of functional domain and independent cluster in tree. The receptor type PTPs are thought to be implicated in cell-cell adhesion by association of cell adhesion molecules. Since sponges are the most primitive multicellular animals and are thought to be lacking cell cohesiveness and coordination typical of eumetazoans, cloning and sequencing of PTP cDNAs of Ephydatia fluviatilis (freshwater sponge) have been conducted by RT-PCR to determine whether or not sponges have PTP genes in their genomes. We have isolated nine PTPs, of which five are possibly receptor type. A phylogenetic tree including the sponge PTPs revealed that most of the gene duplications that gave rise to the 17 subtypes had been completed in the very early evolution of animals before the parazoan-eumetazoan split, the earliest branching among extant animal phyla. The family tree also revealed the rapid evolutionary rate of PTP subtypes in the early stage of animal evolution.

Amino Acid Sequence↗

Phospholipase C cDNAs from sponge and hydra: antiquity of genes involved in the inositol phospholipid signaling pathway.

To know whether or not the set of genes involved in the inositol phospholipid signaling pathway already existed in the early evolution of animals, we carried out cloning of cDNAs encoding phospholipase Cs (PLCs) from Ephydatia fluviatilis (freshwater sponge) and Hydra magnipapillata strain 105 (hydra). We isolated two PLC cDNAs, PLC-betaS and PLC-gammaS, from sponge and three cDNAs, PLC-betaH1, PLC-betaH2, and PLC-deltaH, from hydra. From the domain organization and the divergence pattern in the PLC family tree, the sponge PLC-betaS and PLC-gammaS and the hydra PLC-deltaH are possibly homologous to the vertebrate PLC-beta, PLC-gamma and PLC-delta subtypes, respectively. A detailed phylogenetic analysis suggests that the hydra PLC-betaH1 and PLC-betaH2 are homologs of the vertebrate PLC-beta1/2/3/Drosophila PLC21 and the vertebrate PLC-beta4/Drosophila norpA, respectively. A phylogenetic analysis of the PLC family and the protein kinase C (PKC) family, together with that of the G protein alpha subunit (Galpha) family, revealed that the origin of the set of genes G(alpha)q, PLC, PKC involved in the inositol phospholipid signaling pathway is very old, going back to dates before the parazoan-eumetazoan split, the earliest branching among extant animal phyla.

Animals↗

Ancient gene duplication and domain shuffling in the animal cyclic nucleotide phosphodiesterase family.

The animal cyclic nucleotide phosphodiesterases (PDEs) comprise at least seven subtypes, PDE1-7, which differ from each other in domain organization and primary function, and they diverged from an ancestral gene by gene duplication and domain shuffling during animal evolution. To obtain rough estimates for the divergence times of these subtypes, cloning of PDE cDNAs from Ephydatia fluviatilis (freshwater sponge) by RT-PCR was carried out. We obtained four cDNAs, EFPDE1, EFPDE2, EFPDE3, and EFPDE4, which are possibly homologs of the vertebrate PDE1, PDE2, PDE3, and PDE4, respectively, judging from the sequence similarity, domain organization, and branching pattern in the phylogenetic tree. The phylogenetic tree of the PDE family revealed that most gene duplications and domain shufflings that gave rise to different subtypes had been completed in the early evolution of animals before the separation of sponges and eumetazoans.

3',5'-Cyclic-AMP Phosphodiesterases↗

Sponge Pax cDNA related to Pax-2/5/8 and ancient gene duplications in the Pax family.

Members of the Pax gene family encode transcription factors containing a DNA-binding paired domain which is involved in developmental control and the formation of the central nervous system (CNS). The family members are classified into six classes or subfamilies, depending on the presence or absence of paired-type homeobox and octapeptide. To obtain rough estimates of times when the different classes of the Pax family diverged by gene duplication, we cloned and sequenced a Pax-related cDNA, sPax-2/5/8, from Ephydatia fluviatilis, a freshwater sponge, which encodes a paired-type homeobox and an octapeptide, in addition to a paired domain. A phylogenetic tree based on the paired domain sequences suggest that sPax-2/5/8 is a homologue of vertebrate Pax-2/5/8. It was also suggested that the majority of gene duplications that gave rise to distinct classes has been completed in the very early evolution of animals before the parazoan-eumetazoan split. Long after the ancient gene duplications, further gene duplications that gave rise to members in each subfamily occurred on the chordate lineages and completed before the fish-tetrapod split. This suggests that the major classes of the Pax genes involved in the formation of CNS characteristic of triploblasts had already existed long before the Cambrian explosion of triploblasts, and there is no direct link between the creation of new genes with novel functions and the Cambrian explosion. The pattern of gene diversification found in the Pax family is similar to those in five gene families involved in the signal transduction analyzed by us. Furthermore, the evolutionary rates of the Pax proteins have been shown to decrease with increasing organismal complexity during animal evolution.

Amino Acid Sequence↗

Intermittent divergence of the protein tyrosine kinase family during animal evolution.

The protein tyrosine kinases (PTKs) are a large protein family consisting of many subfamilies with a variety of domain structures. The basic functions are thought to differ for different subfamilies. To know the dates at which the subfamilies diverged by gene duplications, a phylogenetic tree of the PTKs was inferred by comparing sequences from a wide range of species covering diploblasts and triploblasts. The PTK tree revealed that almost all of the gene duplications that gave rise to different subfamilies occurred rapidly before the diploblast-triploblast split, accompanying with rapid amino acid substitutions. This type of gene duplication was, however, rarely observed after that split. Long after the subfamily divergence, another type of gene duplication that gave rise to diverse tissue-specific genes occurred in each subfamily on the chordate lineage since the separation from arthropods. This type of gene duplication occurred frequently before the fish-tetrapod split, accompanying with rapid amino acid substitutions. In contrast, both the frequency of gene duplications and the rate of the amino acid substitutions were considerably reduced after that split. These results strongly suggest that the PTKs diverged intermittently, but not gradually, during animal evolution.

Amino Acids↗

An estimate of divergence time of Parazoa and Eumetazoa and that of Cephalochordata and Vertebrata by aldolase and triose phosphate isomerase clocks.

Previously we suggested that four proteins including aldolase and triose phosphate isomerase (TPI) evolved with approximately constant rates over long periods covering the whole animal phyla. The constant rates of aldolase and TPI evolution were reexamined based on three different models for estimating evolutionary distances. It was shown that the evolutionary rates remain essentially unchanged in comparisons not only between different classes of vertebrates but also between vertebrates and arthropods and even between animals and plants, irrespective of the models used. Thus these enzymes might be useful molecular clocks for inferring divergence times of animal phyla. To know the divergence time of Parazoa and Eumetazoa and that of Cephalochordata and Vertebrata, the aldolase cDNAs from Ephydatia fluviatilis, a freshwater sponge, and the TPI cDNAs from Ephydatia fluviatilis and Branchiostoma belcheri, an amphioxus, have been cloned and sequenced. Comparisons of the deduced amino acid sequences of aldolase and TPI from the freshwater sponge with known sequences revealed that the Parazoa-Eumetazoa split occurred about 940 million years ago (Ma) as determined by the average of two proteins and three models. Similarly, the aldolase and TPI clocks suggest that vertebrates and amphioxus last shared a common ancestor around 700 Ma and they possibly diverged shortly after the divergence of deuterostomes and protostomes.

Amino Acid Sequence↗

Evolution of gene families and relationship with organismal evolution: rapid divergence of tissue-specific genes in the early evolution of chordates.

To determine a possible relationship between organismal and molecular evolution, the divergence patterns of gene families were examined by taking special notice of functional difference, tissue distribution, and intracellular localization of the members. A phylogenetic analysis of 25 different gene families revealed interesting patterns of divergence of these families: Most gene duplications giving rise to different functions antedate the vertebrates-arthropods separation. On the other hand, in a group of members carrying virtually identical function to one another but differing in tissue distribution (tissue-specific isoform), most gene duplications have occurred independently in each of vertebrates and arthropods after the separation of the two animal groups. In family members encoding molecules localizing in cell compartments (compartmentalized isoforms), the gene duplications antedate the animals-fungi separation. In the cases of the Ca2+ pump and rab subfamilies, the compartmentalized isoforms were shown to have diverged during the early evolution of eukaryotes. A phylogenetic analysis of the tissue-specific isoforms from 26 different subfamilies revealed extensive gene duplications and rapid rates of amino acid substitutions in the early evolution of chordates before the separation of fishes and tetrapods. On the contrary, the genetic variations are relatively low in the later period. This pattern of evolution observed at the molecular level is correlated well with that of tissue evolution based on fossil evidence and morphological data, and thus evolution at the two levels may be related.

Animals↗

Phylogenetic position of Dictyostelium inferred from multiple protein data sets.

The phylogenetic position of Dictyostelium inferred from 18S rRNA data contradicts that from protein data. Protein trees always show the close affinity of Dictyostelium with animals, fungi, and plants, whereas in 18S rRNA trees the branching of Dictyostelium is placed at a position before the massive radiation of protist groups including the divergence of the three kingdoms. To settle this controversial issue and to determine the correct position of Dictyostelium, we inferred the phylogenetic relationship among Dictyostelium and the three kingdoms Animalia, Fungi, and Plantae by a maximum-likelihood method using 19 different protein data sets. It was shown at the significance level of 1 SE that the branching of Dictyostelium antedates the divergence of Animalia and Fungi, and Plantae is an outgroup of the Animalia-Fungi-Dictyostelium clade.

Amino Acid Sequence↗

Structures of cDNAs encoding the muscle-type and non-muscle-type isozymes of lamprey fructose bisphosphate aldolases and the evolution of aldolase genes.

Nearly full-length cDNA clones for muscle-type and non-muscle-type aldolase mRNAs were cloned from lambda gt10 cDNA libraries constructed from skeletal muscle and liver mRNAs of lamprey (Entosphenus japonicus). The cDNA-M8 has 2,240 bp carrying an open reading frame of 1,089 bp which encodes 362 amino acids without the amino terminal methionine, while the cDNA-L3 is 1,761 bp in length and has an open reading frame of 1,092 bp, which encodes 363 amino acids without the methionine. We designated the cDNA clones M8 and L3 as the muscle-type and non-muscle-type aldolase cDNAs, respectively. The entire amino acid sequences deduced from cDNA-M8 and -L3 show a high degree of identity to one another (76%) and also to vertebrate aldolases A (74-76%), B (68-70%), and C (71-76%) and Drosophila melanogaster aldolases alpha, beta, and gamma (66-67%). Northern blot analyses using the 3'-noncoding sequences of cDNA-M8 and -L3 as hybridization probes indicated that the muscle-type mRNA is expressed mainly in the skeletal muscle, heart muscle, brain, and some other tissues, but probably not in liver, while the non-muscle-type mRNA is expressed mainly in the liver and also in brain and other tissues, except for the heart muscle. Phylogenetic analyses showed that both muscle-type and non-muscle-type aldolases of lamprey resemble one another and might share a common ancestor with vertebrate aldolases A and C, but they are not direct ancestors of vertebrate aldolases.

Amino Acid Sequence↗

Functional constraints against variations on molecules from the tissue level: slowly evolving brain-specific genes demonstrated by protein kinase and immunoglobulin supergene families.

In the protein kinase family, the basic function of kinase domain is similar among members. According to the standard view of functional constraint, the molecular evolutionary rate depends on functional and structural features characteristic of individual molecules (local constraint). Thus the evolutionary rate of the kinase domain is expected to be similar for different members. Contrary to this expectation, a comparison of the evolutionary rates revealed a wide difference among members; it amounts to about 100 times difference between the maximum and minimum rates. A similar result was also found in members of the immunoglobulin (Ig) family. In addition, significant correlations in evolutionary rate were observed between the kinase domain and the Ig-like domain in the receptor protein tyrosine kinases and between the kinase domain and the SH domain in the nonreceptor-type kinases. Furthermore, the evolutionary rates of family members that are expressed tissue specifically differ widely, depending on their tissue distribution: members expressed in the brain evolve with significantly slower rates than those expressed in the immune system. These results strongly suggest the presence of an alternative constraint (global constraint) against changes on molecules derived from higher levels like tissues or organs.

Animals↗

Molecular clock for dating of divergence between animal phyla.

To estimate approximate times of divergence of animal phyla lacking fossil data, it is important to find a molecule that evolves with an approximately constant rate over a wide evolutionary distance covering the whole animal phyla. For this purpose, the evolutionary rate constancy has been examined for 20 proteins. It was found that four proteins, particularly the aldolase C, involved in the glycolitic pathway, had evolved with rates that are approximately constant not only among different classes of vertebrates, but also between vertebrates and arthropods. The evolutionary rate (= 0.26 x 10(-9)/site/year) of the aldolase C is likely to have remained essentially unchanged even between animals and plants.

Animals↗

Primary structure and distribution of ryanodine-binding protein isoforms of the bullfrog skeletal muscle.

We have cloned two groups of cDNAs which encode isoforms of ryanodine-binding protein/Ca2+ release channel of the bullfrog skeletal muscle sarcoplasmic reticulum. One of the cDNA groups encodes the protein of 5,037 (or 5,031 with a deletion) amino acids with a molecular weight of 571,262 (or 570,607), which is identified as the alpha-isoform of the ryanodine-binding protein based on the amino acid sequence of three tryptic fragments of the purified protein. The other group of cDNAs encodes the protein of 4,868 amino acids with molecular weight of 553,029, which contains the sequences of three proteolytic fragments derived from the beta-isoform protein. About 70% of the amino acid sequence identity is present between alpha- and beta-isoforms of the bullfrog. The primary structure of the alpha-isoform is highly (80%) homologous to the ryanodine-binding protein cloned from rabbit skeletal muscle (type 1). The beta-isoform, on the other hand, is more than 85% identical with that from the rabbit brain (type 3), while it has only 67% overall identity with type 1. Analyses of RNA from various tissues of the bullfrog demonstrate that the beta-isoform is widely expressed, while the alpha-isoform is expressed mainly in skeletal muscle. A phylogenetic analysis of the ryanodine-binding protein/Ca2+ release channel family suggests that the various types of Ca2+ release channels have evolved from an ancestor gene. Possible differential roles of alpha- and beta-isoforms of ryanodine-binding protein in Ca2+ release mechanisms including skeletal muscle excitation-contraction coupling were discussed.

Animals↗

cDNA cloning and regional distribution of a novel member of the opioid receptor family.

We have cloned a cDNA for a novel member of the opioid receptor family, designated as ROR-C, from the rat cerebrum cDNA library using the probe derived from the delta-opioid receptor subtype cDNA. The deduced amino acid sequence of ROR-C shows high homology with those of ROR-A (rat delta-opioid receptor subtype), ROR-B (rat mu-subtype) and ROR-D (rat kappa-subtype). RNA blot hybridization and in situ hybridization analysis revealed that ROR-C mRNA is expressed in discrete regions of the rat central nervous system.

Amino Acid Sequence↗

Isolation and characterization of a gene for a ryanodine receptor/calcium release channel in Drosophila melanogaster.

The nucleotide sequence of a 25.7 kilobase Drosophila melanogaster genomic DNA segment containing a gene for a ryanodine receptor/calcium release channel homologue has been determined. Computer analysis and partial cDNA cloning revealed 26 exons comprising the protein-coding sequence in this gene. The predicted protein is homologous in amino acid sequence and shares characteristic structural features with the mammalian ryanodine receptors. In blot hybridization analysis, a approximately 16 kilobase RNA species was identified abundantly in a 6-12 h embryo as the transcript from this gene. In situ hybridization to polytene chromosomes indicated that this gene locates at band position 44F on the second chromosome.

Amino Acid Sequence↗

Phylogenetic relationship of the kingdoms Animalia, Plantae, and Fungi, inferred from 23 different protein species.

The phylogenetic relationship among the kingdoms Animalia, Plantae, and Fungi remains uncertain, because of lack of solid fossil evidence. In spite of the extensive molecular phylogenetic analyses since the early report, this problem is a longstanding controversy; the proposed phylogenetic relationships differ for different authors, depending on the molecules and methods that they use. To settle this problem, we have accumulated 23 different protein species from the three kingdoms and have inferred the phylogenetic trees by three different methods--the maximum-likelihood method, the neighbor-joining method, and the maximum-parsimony method--for each data set. Although inferred tree topologies differ for different protein species and methods used, both the maximum-likelihood analysis based on the difference (delta l) between the total log-likelihood of a tree and that of the maximum-likelihood tree and bootstrap probability (P) of 23 proteins consisting of 10,051 amino acid sites in total have shown that a tree ((A,F),P), in which Plantae (P) is an outgroup to an Animalia (A)-Fungi (F) clade, is the maximum-likelihood tree; the delta l (= 0.0) and P (94%) of ((A,F),P) are significantly larger than those of ((A,P),F) (delta l = -54.4 +/- 36.3; and P = 6%) and ((F,P),A) (delta l = -141.1 +/- 30.9; and P = 0%).(ABSTRACT TRUNCATED AT 250 WORDS)

Animal Population Groups↗

A possible link between molecular evolution and tissue evolution demonstrated by tissue specific genes.

In this paper, we reviewed our recent works on a possible link between molecular evolution and tissue evolution. The evolutionary rates of genes that are expressed tissue specifically were shown to differ widely to one another, depending on tissues: Brain specific genes evolve with significantly slower rate than immune specific genes. The tissue dependence of molecular evolutionary rate strongly suggests the presence of functional constraints against molecular changes from tissue level. A molecular phylogenetic analysis of tissue specific isoforms that are identical to one another in function, but differ only in tissue distribution revealed frequent gene duplications and rapid accumulations of amino acid substitutions during the early evolution of chordates, where rapid evolution at the tissue or organ levels is thought to have occurred. On the basis of functional constraints, a possible explanation for the correlation between evolution at the two levels was presented.

Animals↗