{"id":14517,"date":"2024-12-06T23:14:11","date_gmt":"2024-12-06T16:14:11","guid":{"rendered":"https:\/\/thaipropertynews.com\/feeds\/?p=14517"},"modified":"2024-12-06T23:14:11","modified_gmt":"2024-12-06T16:14:11","slug":"nus-study-a-microrna-solves-an-evolutionary-mystery-of-butterfly-and-moth-wing-colouration","status":"publish","type":"post","link":"https:\/\/thaipropertynews.com\/feeds\/?p=14517","title":{"rendered":"NUS study: A microRNA solves an evolutionary mystery of butterfly and moth wing colouration"},"content":{"rendered":"<table border=\"0\" cellspacing=\"10\" cellpadding=\"5\" align=\"right\">\n<tbody>\n<tr>\n<td><img decoding=\"async\" src=\"https:\/\/mma.prnasia.com\/media2\/291548\/national_university_of_singapore_logo.jpg?p=medium600\" border=\"0\" alt=\"\" title=\"logo\" hspace=\"0\" vspace=\"0\" width=\"118\" \/><\/td>\n<\/tr>\n<\/tbody>\n<\/table>\n<p><span class=\"legendSpanClass\"><span class=\"xn-location\">SINGAPORE<\/span><\/span>, <span class=\"legendSpanClass\"><span class=\"xn-chron\">Dec. 6, 2024<\/span><\/span> \/PRNewswire\/ &#8212;\u00a0Lepidopterans (butterflies and moths) exhibit a splendid diversity of wing colour patterns, and many species display black and white, or dark and bright, wing colour pattern variants associated with the presence and absence of melanin. Many of these wing colour pattern variants are textbook examples of natural selection and evolution. Iconic examples include the rapid increase in frequency of the melanic form of the British peppered moth\u00a0<i>Biston betularia<\/i>, driven by the sootier and darker environment caused by carbon burning and industrialisation in the late 1800s in the <span class=\"xn-location\">United Kingdom<\/span>, and the mimetic radiation of <i>Heliconius<\/i> butterflies, among others.<\/p>\n<div class=\"PRN_ImbeddedAssetReference\">\n<\/div>\n<p>Despite the often well-understood ecological drivers that favour the presence or absence of melanin in the wings of these lepidopterans, the genetic and developmental basis of changes in colouration has remained unclear.<\/p>\n<p><b>How do butterflies and moths paint their wings either black or white?<\/b><\/p>\n<p>Over the past two decades, scientists discovered that the majority of melanic wing colour variants are controlled by a single genomic region surrounding the protein-coding gene &#8216;<i>cortex<\/i>&#8216;. It was assumed, then, that <i>cortex<\/i> was the melanic colour switch. A team of international researchers from <span class=\"xn-location\">Singapore<\/span>, <span class=\"xn-location\">Japan<\/span>, and <span class=\"xn-location\">the United States of America<\/span>, led by Professor Ant\u00f3nia MONTEIRO and Dr Shen TIAN from the Department of Biological Sciences at the <span class=\"xn-org\">National University of Singapore<\/span> (NUS), discovered that <i>cortex<\/i> does not affect melanic colouration. Instead, a previously ignored microRNA (miRNA), is the actual colour switch.<\/p>\n<p>The findings were published in the journal <i>Science <\/i>on <span class=\"xn-chron\">5 December 2024<\/span>.<\/p>\n<p>Dr Tian, the lead author of this work said, &#8220;Piles of evidence from previous studies cast doubt on whether <i>cortex <\/i>was really the melanic colour switch, which inspired me to test the function of some other genomic features within this genomic region \u2013 miRNAs.&#8221; He conducted this research work as a PhD\/postdoctoral researcher in Professor Monteiro&#8217;s laboratory at NUS, and is now a postdoctoral researcher at <span class=\"xn-org\">Duke University<\/span>, <span class=\"xn-location\">USA<\/span>.<\/p>\n<p>&#8220;MiRNAs are small RNA molecules that do not encode proteins like most genes do, yet they play essential roles in gene regulation by repressing the expression of target genes,&#8221; added Dr Tian.<\/p>\n<p>In this study, Dr Tian and colleagues found a miRNA located next to <i>cortex<\/i>, <i>mir-193<\/i>. The team disrupted <i>mir-193<\/i> using a gene editing tool CRISPR-Cas9 in three deeply diverged lineages of butterflies. The complete disruption of <i>mir-193<\/i> eliminated black and dark wing colours in the African squinting bush brown butterfly, <i>Bicyclus anynana,<\/i> the Indian cabbage white butterfly, <i>Pieris canidia<\/i>, and the common mornon butterfly, <i>Papilio polytes<\/i>. In contrast, disrupting <i>cortex<\/i> and three other protein-coding genes from the same genomic region in <i>B. anynana<\/i> had no effect on wing colours. This indicated that <i>mir-193<\/i>, not <i>cortex<\/i> or any other nearby gene, is the key melanic colour regulator across these Lepidoptera.<\/p>\n<p>The team further confirmed that <i>mir-193<\/i> is processed from a long non-protein-coding RNA, <i>ivory<\/i>, and it functions by directly repressing multiple pigmentation genes. Since the sequence of <i>mir-193<\/i> is deeply conserved not only in Lepidoptera but across the animal kingdom, the team also tested the role of <i>mir-193<\/i> in <i>Drosophila <\/i>flies. Surprisingly, <i>mir-193<\/i> was also found to control melanic colouration in these flies, suggesting a deeply conserved role for <i>mir-193<\/i> beyond Lepidoptera.<\/p>\n<p>Prof Monteiro said, &#8220;While previous studies exclusively focused on the role of <i>cortex<\/i> in generating melanic colour variations, this work brings a twist to this long-standing hypothesis and demonstrates that a small, non-protein coding RNA is the switch that, by being expressed or not expressed, brings about the diverse melanic wing colour variations in nature.&#8221;<\/p>\n<p>&#8220;This study shows that poorly annotated non-protein-coding RNAs, such as miRNAs, should never be ignored in genotype-phenotype association studies, which would otherwise lead to misleading conclusions,&#8221; added Prof Monteiro.<\/p>\n<p>Dr Tian said, &#8220;The role of non-coding RNAs in phenotypic diversification is largely understudied. This study prompts further investigations on how non-coding RNAs such as miRNAs can contribute to phenotypic diversifications in organisms.&#8221;<\/p>\n<p>Read more at: <a href=\"https:\/\/www.science.nus.edu.sg\/blog\/2024\/12\/a-microrna-solves-an-evolutionary-mystery-of-butterfly-and-moth-wing-colouration\/\" target=\"_blank\" rel=\"nofollow\">https:\/\/www.science.nus.edu.sg\/blog\/2024\/12\/a-microrna-solves-an-evolutionary-mystery-of-butterfly-and-moth-wing-colouration\/<\/a><\/p>\n<p>\u00a0<\/p>","protected":false},"excerpt":{"rendered":"<p><!-- wp:html --><\/p>\n<table border=\"0\" cellspacing=\"10\" cellpadding=\"5\" align=\"right\">\n<tbody>\n<tr>\n<td><img decoding=\"async\" src=\"https:\/\/mma.prnasia.com\/media2\/291548\/national_university_of_singapore_logo.jpg?p=medium600\" border=\"0\" alt=\"\" title=\"logo\" hspace=\"0\" vspace=\"0\" width=\"118\" \/><\/td>\n<\/tr>\n<\/tbody>\n<\/table>\n<p><span class=\"legendSpanClass\"><span class=\"xn-location\">SINGAPORE<\/span><\/span>, <span class=\"legendSpanClass\"><span class=\"xn-chron\">Dec. 6, 2024<\/span><\/span> \/PRNewswire\/ &#8212;\u00a0Lepidopterans (butterflies and moths) exhibit a splendid diversity of wing colour patterns, and many species display black and white, or dark and bright, wing colour pattern variants associated with the presence and absence of melanin. Many of these wing colour pattern variants are textbook examples of natural selection and evolution. Iconic examples include the rapid increase in frequency of the melanic form of the British peppered moth\u00a0<i>Biston betularia<\/i>, driven by the sootier and darker environment caused by carbon burning and industrialisation in the late 1800s in the <span class=\"xn-location\">United Kingdom<\/span>, and the mimetic radiation of <i>Heliconius<\/i> butterflies, among others.<\/p>\n<div class=\"PRN_ImbeddedAssetReference\">\n<\/div>\n<p>Despite the often well-understood ecological drivers that favour the presence or absence of melanin in the wings of these lepidopterans, the genetic and developmental basis of changes in colouration has remained unclear.<\/p>\n<p><b>How do butterflies and moths paint their wings either black or white?<\/b><\/p>\n<p>Over the past two decades, scientists discovered that the majority of melanic wing colour variants are controlled by a single genomic region surrounding the protein-coding gene &#8216;<i>cortex<\/i>&#8216;. It was assumed, then, that <i>cortex<\/i> was the melanic colour switch. A team of international researchers from <span class=\"xn-location\">Singapore<\/span>, <span class=\"xn-location\">Japan<\/span>, and <span class=\"xn-location\">the United States of America<\/span>, led by Professor Ant\u00f3nia MONTEIRO and Dr Shen TIAN from the Department of Biological Sciences at the <span class=\"xn-org\">National University of Singapore<\/span> (NUS), discovered that <i>cortex<\/i> does not affect melanic colouration. Instead, a previously ignored microRNA (miRNA), is the actual colour switch.<\/p>\n<p>The findings were published in the journal <i>Science <\/i>on <span class=\"xn-chron\">5 December 2024<\/span>.<\/p>\n<p>Dr Tian, the lead author of this work said, &#8220;Piles of evidence from previous studies cast doubt on whether <i>cortex <\/i>was really the melanic colour switch, which inspired me to test the function of some other genomic features within this genomic region \u2013 miRNAs.&#8221; He conducted this research work as a PhD\/postdoctoral researcher in Professor Monteiro&#8217;s laboratory at NUS, and is now a postdoctoral researcher at <span class=\"xn-org\">Duke University<\/span>, <span class=\"xn-location\">USA<\/span>.<\/p>\n<p>&#8220;MiRNAs are small RNA molecules that do not encode proteins like most genes do, yet they play essential roles in gene regulation by repressing the expression of target genes,&#8221; added Dr Tian.<\/p>\n<p>In this study, Dr Tian and colleagues found a miRNA located next to <i>cortex<\/i>, <i>mir-193<\/i>. The team disrupted <i>mir-193<\/i> using a gene editing tool CRISPR-Cas9 in three deeply diverged lineages of butterflies. The complete disruption of <i>mir-193<\/i> eliminated black and dark wing colours in the African squinting bush brown butterfly, <i>Bicyclus anynana,<\/i> the Indian cabbage white butterfly, <i>Pieris canidia<\/i>, and the common mornon butterfly, <i>Papilio polytes<\/i>. In contrast, disrupting <i>cortex<\/i> and three other protein-coding genes from the same genomic region in <i>B. anynana<\/i> had no effect on wing colours. This indicated that <i>mir-193<\/i>, not <i>cortex<\/i> or any other nearby gene, is the key melanic colour regulator across these Lepidoptera.<\/p>\n<p>The team further confirmed that <i>mir-193<\/i> is processed from a long non-protein-coding RNA, <i>ivory<\/i>, and it functions by directly repressing multiple pigmentation genes. Since the sequence of <i>mir-193<\/i> is deeply conserved not only in Lepidoptera but across the animal kingdom, the team also tested the role of <i>mir-193<\/i> in <i>Drosophila <\/i>flies. Surprisingly, <i>mir-193<\/i> was also found to control melanic colouration in these flies, suggesting a deeply conserved role for <i>mir-193<\/i> beyond Lepidoptera.<\/p>\n<p>Prof Monteiro said, &#8220;While previous studies exclusively focused on the role of <i>cortex<\/i> in generating melanic colour variations, this work brings a twist to this long-standing hypothesis and demonstrates that a small, non-protein coding RNA is the switch that, by being expressed or not expressed, brings about the diverse melanic wing colour variations in nature.&#8221;<\/p>\n<p>&#8220;This study shows that poorly annotated non-protein-coding RNAs, such as miRNAs, should never be ignored in genotype-phenotype association studies, which would otherwise lead to misleading conclusions,&#8221; added Prof Monteiro.<\/p>\n<p>Dr Tian said, &#8220;The role of non-coding RNAs in phenotypic diversification is largely understudied. This study prompts further investigations on how non-coding RNAs such as miRNAs can contribute to phenotypic diversifications in organisms.&#8221;<\/p>\n<p>Read more at: <a href=\"https:\/\/www.science.nus.edu.sg\/blog\/2024\/12\/a-microrna-solves-an-evolutionary-mystery-of-butterfly-and-moth-wing-colouration\/\" target=\"_blank\" rel=\"nofollow\">https:\/\/www.science.nus.edu.sg\/blog\/2024\/12\/a-microrna-solves-an-evolutionary-mystery-of-butterfly-and-moth-wing-colouration\/<\/a><\/p>\n<p>\u00a0<\/p>\n<p><!-- \/wp:html --><\/p>\n","protected":false},"author":0,"featured_media":0,"comment_status":"open","ping_status":"open","sticky":false,"template":"","format":"standard","meta":{"rop_custom_images_group":[],"rop_custom_messages_group":[],"rop_publish_now":"initial","rop_publish_now_accounts":[],"rop_publish_now_history":[],"rop_publish_now_status":"pending","footnotes":""},"categories":[5,7],"tags":[],"class_list":["post-14517","post","type-post","status-publish","format-standard","has-post-thumbnail","hentry","category-cision-pr-newswire","category-cision-pr-newswire-en"],"_links":{"self":[{"href":"https:\/\/thaipropertynews.com\/feeds\/index.php?rest_route=\/wp\/v2\/posts\/14517","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/thaipropertynews.com\/feeds\/index.php?rest_route=\/wp\/v2\/posts"}],"about":[{"href":"https:\/\/thaipropertynews.com\/feeds\/index.php?rest_route=\/wp\/v2\/types\/post"}],"replies":[{"embeddable":true,"href":"https:\/\/thaipropertynews.com\/feeds\/index.php?rest_route=%2Fwp%2Fv2%2Fcomments&post=14517"}],"version-history":[{"count":0,"href":"https:\/\/thaipropertynews.com\/feeds\/index.php?rest_route=\/wp\/v2\/posts\/14517\/revisions"}],"wp:attachment":[{"href":"https:\/\/thaipropertynews.com\/feeds\/index.php?rest_route=%2Fwp%2Fv2%2Fmedia&parent=14517"}],"wp:term":[{"taxonomy":"category","embeddable":true,"href":"https:\/\/thaipropertynews.com\/feeds\/index.php?rest_route=%2Fwp%2Fv2%2Fcategories&post=14517"},{"taxonomy":"post_tag","embeddable":true,"href":"https:\/\/thaipropertynews.com\/feeds\/index.php?rest_route=%2Fwp%2Fv2%2Ftags&post=14517"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}