{"id":1079,"date":"2020-05-05T10:06:43","date_gmt":"2020-05-05T14:06:43","guid":{"rendered":"http:\/\/blog.richmond.edu\/pollocklab\/?p=1079"},"modified":"2020-05-13T13:42:43","modified_gmt":"2020-05-13T17:42:43","slug":"hemoglobin-the-biochem-that-helps-fetus","status":"publish","type":"post","link":"https:\/\/create.richmond.edu\/pollocklab\/2020\/05\/05\/hemoglobin-the-biochem-that-helps-fetus\/","title":{"rendered":"Hemoglobin &#8211; the biochem that helps fetuses &#8220;breath&#8221;"},"content":{"rendered":"<p>If you know me, you know I geek out over the amazing biochemical process of oxygen transfer throughout the body. Hemoglobin is such a remarkable protein. I am excited to share my new article published on The Conversation on how this protein facilitates transfer of oxygen from the air to a growing fetus. Enjoy!<\/p>\n<p>&nbsp;<\/p>\n<p>&nbsp;<\/p>\n<h1 class=\"legacy\">How does a baby &#8216;breathe&#8217; while inside its mom?<\/h1>\n<figure><img decoding=\"async\" src=\"https:\/\/images.theconversation.com\/files\/332496\/original\/file-20200504-83721-wei11m.jpg?ixlib=rb-1.1.0&amp;rect=1134%2C396%2C6214%2C4506&amp;q=45&amp;auto=format&amp;w=754&amp;fit=clip\" \/><figcaption>Her deep breath has to get to the baby.<br \/>\n<span class=\"attribution\"><a class=\"source\" href=\"https:\/\/www.gettyimages.com\/detail\/photo\/pregnant-woman-sitting-outside-royalty-free-image\/1132797740\">electravk\/Moment via Getty Images<\/a><\/span><\/figcaption><\/figure>\n<p><a href=\"https:\/\/theconversation.com\/profiles\/julie-pollock-643385\">Julie Pollock<\/a>, <em><a href=\"https:\/\/theconversation.com\/institutions\/university-of-richmond-766\">University of Richmond<\/a><\/em><\/p>\n<p>\u201cMothering\u201d is synonymous with \u201cnurturing,\u201d probably because moms start providing for their kids even before they\u2019re born.<\/p>\n<p>A fetus relies on its mother to provide all the essentials. The placenta is key here; this organ develops in the uterus and is like a gateway that lets mom pass baby everything it needs to support its development.<\/p>\n<p>After the mother eats, her body breaks the food down into glucose, amino acids, fatty acids and cholesterol that travel through channels or <a href=\"https:\/\/doi.org\/10.3390\/ijms150916153\">transporters in the placenta to the fetus<\/a>. They provide the energy and the building blocks that the growing fetus uses as it develops organs, tissues and bones.<\/p>\n<p>Vital electrolytes like <a href=\"https:\/\/doi.org\/10.1093\/bjaceaccp\/mku013\">sodium, chloride, calcium and iron<\/a> pass through their own specific channels in the placenta or just diffuse from the mother\u2019s side to the fetus\u2019s.<\/p>\n<p>Fetuses require oxygen for growth, too. Since their lungs are not exposed to air, they can\u2019t breathe on their own. Instead they rely on their mothers to provide the required oxygen through a remarkable biochemical process.<\/p>\n<p><a href=\"https:\/\/scholar.google.com\/citations?user=DL4ZkpIAAAAJ&amp;hl=en\">I\u2019m a biochemist<\/a>, and it\u2019s this process that made me fall in love with the discipline when I was a student. It\u2019s my favorite topic to present to my students today and helps explain why pregnant women can get so easily winded.<\/p>\n<h2>Oxygen running through your veins<\/h2>\n<p>Some ingenious biochemistry is at the root of how oxygen travels throughout the human body.<\/p>\n<p>A protein called hemoglobin is responsible for picking up oxygen in your lungs and carrying it via your bloodstream to all of your tissues. <a href=\"https:\/\/www.acs.org\/content\/acs\/en\/education\/resources\/highschool\/chemmatters\/past-issues\/archive-2009-2010\/chemmatters-february-2010-issue.html\">Hemoglobin contains iron<\/a>, and it\u2019s responsible for <a href=\"https:\/\/theconversation.com\/blood-in-your-veins-is-not-blue-heres-why-its-always-red-97064\">blood\u2019s red color<\/a>. It\u2019s made up of four subunits, two each of two different types.<\/p>\n<figure class=\"align-center zoomable\"><a href=\"https:\/\/images.theconversation.com\/files\/326586\/original\/file-20200408-118674-h9npux.JPG?ixlib=rb-1.1.0&amp;q=45&amp;auto=format&amp;w=1000&amp;fit=clip\"><img decoding=\"async\" src=\"https:\/\/images.theconversation.com\/files\/326586\/original\/file-20200408-118674-h9npux.JPG?ixlib=rb-1.1.0&amp;q=45&amp;auto=format&amp;w=754&amp;fit=clip\" sizes=\"(min-width: 1466px) 754px, (max-width: 599px) 100vw, (min-width: 600px) 600px, 237px\" srcset=\"https:\/\/images.theconversation.com\/files\/326586\/original\/file-20200408-118674-h9npux.JPG?ixlib=rb-1.1.0&amp;q=45&amp;auto=format&amp;w=600&amp;h=307&amp;fit=crop&amp;dpr=1 600w, https:\/\/images.theconversation.com\/files\/326586\/original\/file-20200408-118674-h9npux.JPG?ixlib=rb-1.1.0&amp;q=30&amp;auto=format&amp;w=600&amp;h=307&amp;fit=crop&amp;dpr=2 1200w, https:\/\/images.theconversation.com\/files\/326586\/original\/file-20200408-118674-h9npux.JPG?ixlib=rb-1.1.0&amp;q=15&amp;auto=format&amp;w=600&amp;h=307&amp;fit=crop&amp;dpr=3 1800w, https:\/\/images.theconversation.com\/files\/326586\/original\/file-20200408-118674-h9npux.JPG?ixlib=rb-1.1.0&amp;q=45&amp;auto=format&amp;w=754&amp;h=386&amp;fit=crop&amp;dpr=1 754w, https:\/\/images.theconversation.com\/files\/326586\/original\/file-20200408-118674-h9npux.JPG?ixlib=rb-1.1.0&amp;q=30&amp;auto=format&amp;w=754&amp;h=386&amp;fit=crop&amp;dpr=2 1508w, https:\/\/images.theconversation.com\/files\/326586\/original\/file-20200408-118674-h9npux.JPG?ixlib=rb-1.1.0&amp;q=15&amp;auto=format&amp;w=754&amp;h=386&amp;fit=crop&amp;dpr=3 2262w\" alt=\"\" \/><\/a><figcaption><span class=\"caption\">Hemoglobin\u2019s four subunits \u2013 two blue and two green in the illustration \u2013 can bind to one oxygen molecule each.<\/span><br \/>\n<span class=\"attribution\"><span class=\"source\">Image generated from PBD ID 1C7B by Julie Pollock<\/span>, <a class=\"license\" href=\"http:\/\/creativecommons.org\/licenses\/by-nd\/4.0\/\">CC BY-ND<\/a><\/span><\/figcaption><\/figure>\n<p>Each subunit contains one iron atom bound to a special compound called a heme that can interact with one oxygen molecule. It\u2019s an all-or-nothing situation; for hemoglobins in the same vicinity, they\u2019re either all holding onto oxygen or have all released their oxygen. It depends on the concentration of oxygen in the environment the hemoglobin finds itself in.<\/p>\n<p>When you take a good breath, the concentration of oxygen is high in your lungs. Hemoglobin in the area automatically picks up oxygen. Then it travels via your blood to tissues with lower oxygen concentrations, where it gives up the oxygen.<\/p>\n<figure class=\"align-center zoomable\"><a href=\"https:\/\/images.theconversation.com\/files\/332492\/original\/file-20200504-83740-1j3brd.JPG?ixlib=rb-1.1.0&amp;q=45&amp;auto=format&amp;w=1000&amp;fit=clip\"><img decoding=\"async\" src=\"https:\/\/images.theconversation.com\/files\/332492\/original\/file-20200504-83740-1j3brd.JPG?ixlib=rb-1.1.0&amp;q=45&amp;auto=format&amp;w=754&amp;fit=clip\" sizes=\"(min-width: 1466px) 754px, (max-width: 599px) 100vw, (min-width: 600px) 600px, 237px\" srcset=\"https:\/\/images.theconversation.com\/files\/332492\/original\/file-20200504-83740-1j3brd.JPG?ixlib=rb-1.1.0&amp;q=45&amp;auto=format&amp;w=600&amp;h=270&amp;fit=crop&amp;dpr=1 600w, https:\/\/images.theconversation.com\/files\/332492\/original\/file-20200504-83740-1j3brd.JPG?ixlib=rb-1.1.0&amp;q=30&amp;auto=format&amp;w=600&amp;h=270&amp;fit=crop&amp;dpr=2 1200w, https:\/\/images.theconversation.com\/files\/332492\/original\/file-20200504-83740-1j3brd.JPG?ixlib=rb-1.1.0&amp;q=15&amp;auto=format&amp;w=600&amp;h=270&amp;fit=crop&amp;dpr=3 1800w, https:\/\/images.theconversation.com\/files\/332492\/original\/file-20200504-83740-1j3brd.JPG?ixlib=rb-1.1.0&amp;q=45&amp;auto=format&amp;w=754&amp;h=339&amp;fit=crop&amp;dpr=1 754w, https:\/\/images.theconversation.com\/files\/332492\/original\/file-20200504-83740-1j3brd.JPG?ixlib=rb-1.1.0&amp;q=30&amp;auto=format&amp;w=754&amp;h=339&amp;fit=crop&amp;dpr=2 1508w, https:\/\/images.theconversation.com\/files\/332492\/original\/file-20200504-83740-1j3brd.JPG?ixlib=rb-1.1.0&amp;q=15&amp;auto=format&amp;w=754&amp;h=339&amp;fit=crop&amp;dpr=3 2262w\" alt=\"\" \/><\/a><figcaption><span class=\"caption\">BPG binds to hemoglobin to facilitate the release of oxygen.<\/span><br \/>\n<span class=\"attribution\"><a class=\"license\" href=\"http:\/\/creativecommons.org\/licenses\/by-nd\/4.0\/\">CC BY-ND<\/a><\/span><\/figcaption><\/figure>\n<p>A molecule called 2,3-bisphosphoglycerate, or BPG, facilitates oxygen\u2019s release. It binds to the center cavity between the four subunits of hemoglobin to help the oxygen molecules pop free.<\/p>\n<h2>Getting oxygen to the fetus<\/h2>\n<p>Fetuses are not exposed to air, and their <a href=\"https:\/\/doi.org\/10.1146\/annurev.ph.46.030184.003153\">lungs don\u2019t fully develop until after they\u2019re born<\/a>, so oxygen is another on the long list of things they must get through the placenta from their mothers.<\/p>\n<p>Hemoglobin proteins are too big to cross the placenta. The maternal hemoglobins must give up their oxygen molecules on their side so the oxygen can cross over and be picked up by the fetal hemoglobins on the other side. The predicament is that since this is all happening in such close quarters, the hemoglobins should either all be holding on to oxygen or all be releasing it.<\/p>\n<p>In order to circumvent this problem, <a href=\"https:\/\/www.wiley.com\/en-us\/Essential+Biochemistry%2C+3rd+Edition-p-9781118441688\">fetal hemoglobin differs in structure<\/a> from maternal hemoglobin. With just a few changes to the amino acids in its protein sequence, fetal hemoglobin does not bind well to BPG, the molecule that helps oxygen get loose from adult hemoglobin. Fetal hemoglobin also has a stronger affinity for oxygen than the adult version does.<\/p>\n<p>So at the placental interface, where there\u2019s a lot of BPG, the maternal hemoglobin lets go of the oxygen and the fetal hemoglobin grabs ahold of it tightly. This process allows for effective and efficient transfer of oxygen from the mother to the fetus.<\/p>\n<figure class=\"align-center zoomable\"><a href=\"https:\/\/images.theconversation.com\/files\/332493\/original\/file-20200504-83740-101e5wu.JPG?ixlib=rb-1.1.0&amp;q=45&amp;auto=format&amp;w=1000&amp;fit=clip\"><img decoding=\"async\" src=\"https:\/\/images.theconversation.com\/files\/332493\/original\/file-20200504-83740-101e5wu.JPG?ixlib=rb-1.1.0&amp;q=45&amp;auto=format&amp;w=754&amp;fit=clip\" sizes=\"(min-width: 1466px) 754px, (max-width: 599px) 100vw, (min-width: 600px) 600px, 237px\" srcset=\"https:\/\/images.theconversation.com\/files\/332493\/original\/file-20200504-83740-101e5wu.JPG?ixlib=rb-1.1.0&amp;q=45&amp;auto=format&amp;w=600&amp;h=359&amp;fit=crop&amp;dpr=1 600w, https:\/\/images.theconversation.com\/files\/332493\/original\/file-20200504-83740-101e5wu.JPG?ixlib=rb-1.1.0&amp;q=30&amp;auto=format&amp;w=600&amp;h=359&amp;fit=crop&amp;dpr=2 1200w, https:\/\/images.theconversation.com\/files\/332493\/original\/file-20200504-83740-101e5wu.JPG?ixlib=rb-1.1.0&amp;q=15&amp;auto=format&amp;w=600&amp;h=359&amp;fit=crop&amp;dpr=3 1800w, https:\/\/images.theconversation.com\/files\/332493\/original\/file-20200504-83740-101e5wu.JPG?ixlib=rb-1.1.0&amp;q=45&amp;auto=format&amp;w=754&amp;h=451&amp;fit=crop&amp;dpr=1 754w, https:\/\/images.theconversation.com\/files\/332493\/original\/file-20200504-83740-101e5wu.JPG?ixlib=rb-1.1.0&amp;q=30&amp;auto=format&amp;w=754&amp;h=451&amp;fit=crop&amp;dpr=2 1508w, https:\/\/images.theconversation.com\/files\/332493\/original\/file-20200504-83740-101e5wu.JPG?ixlib=rb-1.1.0&amp;q=15&amp;auto=format&amp;w=754&amp;h=451&amp;fit=crop&amp;dpr=3 2262w\" alt=\"\" \/><\/a><figcaption><span class=\"caption\">Effective transfer of oxygen from maternal hemoglobin (blue and green) to fetal hemoglobin (purple and green) is facilitated by BPG at the placenta.<\/span><br \/>\n<span class=\"attribution\"><a class=\"license\" href=\"http:\/\/creativecommons.org\/licenses\/by-nd\/4.0\/\">CC BY-ND<\/a><\/span><\/figcaption><\/figure>\n<p>Shortly before babies are born, they start making some adult hemoglobin so that when they are breathing on their own, they can perform appropriate oxygen transfer throughout their little bodies. <a href=\"https:\/\/doi.org\/10.1016\/j.ebiom.2016.11.032\">Usually by the time a baby reaches six months of age<\/a>, the levels of fetal hemoglobin are very low, replaced almost completely by adult hemoglobin.<\/p>\n<p>Academically, I knew about this remarkable biochemical process. But it wasn\u2019t until I was pregnant with my son that I really understood it. My miles in spinning class decreased, I lagged behind my husband and dog on our daily walks, and I ran out of breath climbing the three flights of stairs to my office. My son\u2019s hemoglobin was stealing my oxygen, so I had to breathe in more to complete routine tasks.<\/p>\n<p>Once my baby was on the outside, breathing on his own with his mature hemoglobin functioning appropriately, I was more amazed than ever at the perfection of the science.<\/p>\n<p>[<em>Insight, in your inbox each day.<\/em> <a href=\"https:\/\/theconversation.com\/us\/newsletters?utm_source=TCUS&amp;utm_medium=inline-link&amp;utm_campaign=newsletter-text&amp;utm_content=insight\">You can get it with The Conversation\u2019s email newsletter<\/a>.]<!-- Below is The Conversation's page counter tag. Please DO NOT REMOVE. --><img loading=\"lazy\" decoding=\"async\" style=\"border: none !important; box-shadow: none !important; margin: 0 !important; max-height: 1px !important; max-width: 1px !important; min-height: 1px !important; min-width: 1px !important; opacity: 0 !important; outline: none !important; padding: 0 !important; text-shadow: none !important;\" src=\"https:\/\/counter.theconversation.com\/content\/130349\/count.gif?distributor=republish-lightbox-basic\" alt=\"The Conversation\" width=\"1\" height=\"1\" \/><!-- End of code. If you don't see any code above, please get new code from the Advanced tab after you click the republish button. The page counter does not collect any personal data. More info: https:\/\/theconversation.com\/republishing-guidelines --><\/p>\n<p><a href=\"https:\/\/theconversation.com\/profiles\/julie-pollock-643385\">Julie Pollock<\/a>, Associate Professor of Chemistry, <em><a href=\"https:\/\/theconversation.com\/institutions\/university-of-richmond-766\">University of Richmond<\/a><\/em><\/p>\n<p>This article is republished from <a href=\"https:\/\/theconversation.com\">The Conversation<\/a> under a Creative Commons license. Read the <a href=\"https:\/\/theconversation.com\/how-does-a-baby-breathe-while-inside-its-mom-130349\">original article<\/a>.<\/p>\n","protected":false},"excerpt":{"rendered":"<p>If you know me, you know I geek out over the amazing biochemical process of oxygen transfer throughout the body. Hemoglobin is such a remarkable protein. I am excited to share my new article published on The Conversation on how this protein facilitates transfer of oxygen from the air to a growing fetus. Enjoy! &nbsp; [&hellip;]<\/p>\n","protected":false},"author":1880,"featured_media":0,"comment_status":"closed","ping_status":"open","sticky":false,"template":"","format":"standard","meta":{"_et_pb_use_builder":"","_et_pb_old_content":"","_et_gb_content_width":"","footnotes":""},"categories":[795,33,49580],"tags":[],"class_list":["post-1079","post","type-post","status-publish","format-standard","hentry","category-blog","category-teaching","category-the-conversation"],"_links":{"self":[{"href":"https:\/\/create.richmond.edu\/pollocklab\/wp-json\/wp\/v2\/posts\/1079","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/create.richmond.edu\/pollocklab\/wp-json\/wp\/v2\/posts"}],"about":[{"href":"https:\/\/create.richmond.edu\/pollocklab\/wp-json\/wp\/v2\/types\/post"}],"author":[{"embeddable":true,"href":"https:\/\/create.richmond.edu\/pollocklab\/wp-json\/wp\/v2\/users\/1880"}],"replies":[{"embeddable":true,"href":"https:\/\/create.richmond.edu\/pollocklab\/wp-json\/wp\/v2\/comments?post=1079"}],"version-history":[{"count":0,"href":"https:\/\/create.richmond.edu\/pollocklab\/wp-json\/wp\/v2\/posts\/1079\/revisions"}],"wp:attachment":[{"href":"https:\/\/create.richmond.edu\/pollocklab\/wp-json\/wp\/v2\/media?parent=1079"}],"wp:term":[{"taxonomy":"category","embeddable":true,"href":"https:\/\/create.richmond.edu\/pollocklab\/wp-json\/wp\/v2\/categories?post=1079"},{"taxonomy":"post_tag","embeddable":true,"href":"https:\/\/create.richmond.edu\/pollocklab\/wp-json\/wp\/v2\/tags?post=1079"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}