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Biology Senior High

問3が分かりません。 答えはオになります。 解説よろしくお願いします。

3.下のコドン表を参照しながら,あとの問いに答えよ。 DNAの二重らせんの一方の側の塩基が,下に示す配列になっており, その配列がすべて mRNAに読み取られるとする。 AUGG CAVAEUECAUCEAACACUAA 〔DNAの一方の塩基配列〕 TACCGTATGAGGTAGGTTGTGATT….. 2 1番目の塩基 U C A G ウラシル (U) UUU UUCS UUAL UUGJ CUU CUC CUA CUG. フェニルアラニン ロイシン GUUY GUC GUA GUG. ロイシン バリン UCU UCC UCA UCGJ AUUM AUC イソロイシン AUAJ ACA AUG (開始コドン) メチオニン ACGJ CCU CCC CCA CCGJ シトシン (C) ACU ACC GCU GCC GCA GCG J 11 (ア) ① の塩基がCに置換した (ウ) ③の塩基がAに置換した (オ) ⑤ の塩基がGに置換した セリン プロリン 2番目の塩基 トレオニン アラニン アデニン(A) UAU UACS チロシン UAA) (終止コドン) UAGS CAUL CACS 3 ヒスチジン CAAL CAGS } グルタミン AAUT AACS AAAL AAGS アスパラギン リシン GAAL GAGS GAUL GAC アスパラギン酸 }グルタミン酸 45 グアニン (G) UGU システイン UGCS (イ) ②の塩基がAに置換した (エ) ④ の塩基がCに置換した UGA (終止コドン) UGG トリプトファン CGU CGC CGA CGGJ AGUL AGCS AGA AGGS GGU GGC GGA GGG. アルギニン セリン アルギニン グリシン 問1 上に示す配列から合成されるmRNAの塩基配列を左から順に示せ。 問2問1のmRNAから合成されるポリペプチドのアミノ酸の配列を示せ。 ただし, アミノ酸への 変換はmRNAの塩基配列の左から右に進むものとし, mRNAのうちのAUGからタンパク質合 成が開始し,のちに最初のメチオニンははずれるものとする。 問3 上に示す配列の① ~ ⑤ のうちの塩基で1か所に置換が起こり, 合成されるポリペプチドのア ミノ酸の数が大きく増加した。 このときに起こった置換を正しく説明しているものを、次か ら1つ選べ。 ただし、 置換とはもはじめにあったものが別のものに置き換わることをいう。 UCAGUCAGUCAGUCAG 3番目の塩基

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English Senior High

下から5行目のit would~の文構造がわからないです。back upはどのような働きをしているのでしょうか。 教えて頂けるとありがたいです。

A Makeover for Hoover Dam Hydropower has attracted increasing attention in recent years as a renewable type of clean energy. As long as a suitable water source is available, hydropower facilities are usually good investments, producing energy in a manner that generates far less air pollution and CO2 emissions than fossil fuels do. The most common way to generate hydropower is to trap water at a high elevation behind a dam so it can be released and used to spin turbines below, which, in turn, power electricity-producing generators. However, hydropower has its drawbacks. Droughts and increased water consumption have reduced the flow of many rivers. As rivers become shallower, the necessary volume of water for electricity difficult to maintain, and power supply and generation is dependability are negatively impacted. more Variability in water levels has particularly affected Hoover Dam, a mega-scale hydropower facility in the US state of Nevada. Built in the 1930s at enormous expense to control the frequently flooding Colorado River and maintain a water supply for farmland irrigation, the dam's hydropower capabilities were seen as a way to recover some of the costs of its construction over the long term. The dam's electricity-generating capacity, however, was challenged from the start by seasonal variability in water flow, and in recent years has been greatly reduced by droughts. Combining hydropower with other alternative energy sources, though, may offer a solution. Solar and wind plants can produce enormous amounts of electricity, but one serious downside is that the energy they produce is not available when there is little sun or wind. While conventional batteries can help with this issue, storing such tremendous volumes of electricity has long been a challenge. A recently proposed system for Hoover Dam could provide an answer, though. The plan suggests building a new pumping station that would be powered by both wind and solar. It would push water from the river back up to Hoover Dam, refilling the lake behind it. The water could be released anytime to power the dam's generators in order to reliably meet demand for electricity. Kelly Sanders, an engineering professor at the University of Southern California, is enthusiastic about the storage plan, saying, "We by the p replace fo solat als are st ons to the What is 1 Inst inves 2 WE dams 3 A neg sys 1 en

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