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-This message was sent from a trusted sender. [♠️SlotoCash Casino♠️ {NAME},Get your💰Bonus💰now! IT'S TIME TO JOIN SLOTO CASH AND CELEBRATE YOUR WINS 🎉🎉 Coupon Code - FREE20BANDITS PLAY NOW✔ *available to new players only]( To stop receiving these emails click here [Unsubscribe]( To be removed from our list [click here]( write to us at: PO Box JETTON STREET STE 120 , Davidson , NC 28036 ======= The oxygen-transporting protein haemoglobin has under gone repeated adaptations as animals evolved to conquer new environments — from the depths of the oceans1 to high mountain ranges2. These adaptations relied on changes in the long-range interactions between oxygen-binding sites buried in the protein’s subunits, and between these regions and binding sites for a multitude of small effector molecules on the protein’s surface3. How did this complex molecular machine, which can respond so exquisitely to available levels of both oxygen and several other effector molecules, come into being? Writing in Nature, Pillai et al.4 reconstruct the stepwise evolution of haemoglobin from precursors that existed more than 400 million years ago. =========== Almost nothing was previously known about how the four-subunit (tetrameric) form of haemoglobin that is found in modern-day jawed vertebrates evolved from ancient monomers. Tetrameric haemoglobin consists of two a- and two ß-subunits. Pillai et al. computationally reconstructed an evolutionary tree to chart the protein’s ancient history, using the amino-acid sequences of a large collection of the closely related vertebrate globin proteins, which exist as either monomers or tetramers. The authors’ tree was constructed taking into account that amino-acid substitutions a given protein shares with close relatives tend to have originated in more-recent common ancestors than have those it shares with more-distant relatives. The reconstructed evolutionary tree indicates that multiple rounds of gene duplication and subsequent divergence gave rise to the globin family and, by way of several ancestral proteins, to tetrameric haemoglobin (Fig. 1). A lens combined with an artificial iris is placed at the front of the device, just as in the human eye. The retina at the back combines with a hemispherical shell at the front to form a spherical chamber (the ‘eyeball’); the frontal hemispherical shell is made from aluminium lined with a tungsten film. The chamber is filled with an ionic liquid that mimics the vitreous humour — the gel that fills the space between the lens and the retina in the human eye. This arrangement is necessary for the electrochemical operation of the nanowires. The overall structural similarity between the artificial eye and the human eye confers on Gu and colleagues’ device a wide field of view of 100°. This compares with roughly 130° for the vertical field of view of a static human eye. I'm proud to be your boss. Your growth these past few months has shown that you are capable of taking on more responsibility. DZO4DLA59JLSXNFM7M98NQ0QA0N3KBUF5JVDAV8YVGWDBNZ1CMK2Y6OQLWE0M7LS489MGRYWLQFWIMDDPLMMSFTQTX7SQMRPOJTIYHZ9WFIZPYJ08J7RV3LN5OR8LHBII0GZ5GRSQRMD05Z5 KZGG04HH7X5Z3SXM6Z1QHZY6DT75PBF9BPJ5VZ68AZIFK9IYSMGPYDMOLPOX4ONFHJQD7ZEJH06GBG6WX70YLAHR7XPM6ZBDM2X 784025231161724619460316003716013215018454030739612248343192401237337374232264573133330573238236143680732435086060479691525520409491984777326184 496645897855557315812488005500479276514169569560541546409040868101695623354279554149777940093217561 XHCUSZ6SD7NLCNE IK66MPJ3P8D4TUR34OG672XJH9GEU5ONTOMURNZK23R8CQQRB5X53LVHJYBU9I17JM6TZ9DYVK9K6ZN59V3R0EGSEGAEENHNG67 586895344594201 260955880241160806949740033571095737454063821212337894482473685755560803835281097475842932794950137 I am so grateful you were able to come to my wedding and join in on the celebrations. I had so much fun dancing the night away with you. Also, thank you so much for the blender. Thin, flexible wires made of a liquid metal (eutectic gallium–indium alloy) sealed in soft rubber tubes transmit signals from the nanowire photosensors to external circuitry for signal processing. These wires mimic the nerve fibres that connect the human eye to the brain. A layer of indium between the liquid-metal wires and nanowires improves electrical contact between the two. The artificial retina is held in place by a socket made from a silicone polymer, to ensure proper alignment between the wires and nanowires. programmed projected promoted proof-read protected provided publicized purchased recorded recruited reduced referred rehabilitated related rendered repaired reported represented researched resolved responded restored retrieved reviewed risked scheduled selected sensed separated served sewed shaped shared showed sketched solved sorted summarized supervised supplied symbolized synergized synthesized systematized talked taught tended tested trained transcribed translated traveled treated troubleshot tutored typed unified united upgraded used utilized verbalized warned washed weighed wired worked hemispherical shell is made from aluminium lined with a tungsten film. The chamber is filled with an ionic liquid that mimics the vitreous humour — the gel that fills the space between the lens and the retina in the human eye. This arrangement is necessary for the electrochemical operation of the nanowires. The overall structural similarity between the artificial eye and the human eye confers on Gu and colleagues’ device a wide field of view of 100°. This compares with roughly 130° for the vertical field of view of a static human eye. 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