Plant ‘thermometer’ triggers springtime growth by measuring night-time heat

A photoreceptor molecule in plant cells has been found to have a second job as a thermometer after dark – allowing plants to read seasonal temperature changes. Scientists say the discovery could help breed crops that are more resilient to the temperatures expected to result from climate change

A An international team of scientists led by the University of Cambridge has discovered that the ‘thermometer’ molecule in plants enables them to develop according to seasonal temperature changes. Researchers have revealed that molecules called phytochromes – used by plants to detect light during the day – actually change their function in darkness to become cellular temperature gauges that measure the heat of the night.

The new findings, published in the journal Science, show that phytochromes control genetic switches in response to temperature as well as light to dictate plant development.

B At night, these molecules change states, and the pace at which they change is ‘directly proportional to temperature’, say scientists, who compare phytochromes to mercury in a thermometer. The warmer it is, the faster the molecular change – stimulating plant growth.

C Farmers and gardeners have known for hundreds of years how responsive plants are to temperature: warm winters cause many trees and flowers to bud early, something humans have long used to predict weather and harvest times for the coming year. The latest research pinpoints for the first time a molecular mechanism in plants that reacts to temperature – often triggering the buds of spring we long to see at the end of winter.

D With weather and temperatures set to become ever more unpredictable due to climate change, researchers say the discovery that this light-sensing molecule also functions as the internal thermometer in plant cells could help us breed tougher crops. ‘It is estimated that agricultural yields will need to double by 2050, but climate change is a major threat to achieving this. Key crops such as wheat and rice are sensitive to high temperatures. Thermal stress reduces crop yields by around 10% for every one degree increase in temperature,’ says lead researcher Dr Philip Wigge from Cambridge’s Sainsbury Laboratory. ‘Discovering the molecules that allow plants to sense temperature has the potential to accelerate the breeding of crops resilient to thermal stress and climate change.’

E In their active state, phytochrome molecules bind themselves to DNA to restrict plant growth. During the day, sunlight activates the molecules, slowing down growth. If a plant finds itself in shade, phytochromes are quickly inactivated – enabling it to grow faster to find sunlight again. This is how plants compete to escape each other’s shade. ‘Light-driven changes to phytochrome activity occur very fast, in less than a second,’ says Wigge.

At night, however, it’s a different story. Instead of a rapid deactivation following sundown, the molecules gradually change from their active to inactive state. This is called ‘dark reversion’. ‘Just as mercury rises in a thermometer, the rate at which phytochromes revert to their inactive state during the night is a direct measure of temperature,’ says Wigge.

F ‘The lower the temperature, the slower the rate at which phytochromes revert to inactivity, so the molecules spend more time in their active, growth-suppressing state. This is why plants are slower to grow in winter. Warm temperatures accelerate dark reversion, so that phytochromes rapidly reach an inactive state and detach themselves from the plant’s DNA – allowing genes to be expressed and plant growth to resume.’ Wigge believes phytochrome thermo-sensing evolved at a later stage, and co-opted the biological network already used for light-based growth during the downtime of night.

G Some plants mainly use day length as an indicator of the reason. Other species, such as daffodils, have considerable temperature sensitivity, and can flower months in advance during a warm winter. In fact, the discovery of the dual role of phytochromes provides the science behind a well-known rhyme long used to predict the coming season: oak before ash we’ll have a plash, ash before oak we’re in for a soak.

Wigge explains: ‘Oak trees rely much more on temperature, likely using phytochromes as thermometers to dictate development, whereas ash trees rely on measuring day length to determine their seasonal timing. A warmer spring, and consequently a higher likeliness of a hot summer, will result in oak leafing before ash. A cold spring will see the opposite. As the British know only too well, a colder summer is likely to be a rain-soaked one.’

H The new findings are the culmination of twelve years of research involving scientists from Germany, Argentina and the US, as well as the Cambridge team. The work was done in a model system, using a mustard plant called Arabidopsis, but Wigge says the phytochrome genes necessary for temperature sensing are found in crop plants as well. ‘Recent advances in plant genetics now mean that scientists are able to rapidly identify the genes controlling these processes in crop plants, and even alter their activity using precise molecular “scalpels”,’ adds Wigge. ‘Cambridge is uniquely well-positioned to do this kind of research as we have outstanding collaborators nearby who work on more applied aspects of plant biology, and can help us transfer this new knowledge into the field.’

Questions 27-32

Do the following statements agree with the information given in Reading Passage 3?

In boxes 27-32 on your answer sheet, write

TRUE               if the statement agrees with the information

FALSE              if the statement contradicts the information

NOT GIVEN    if there is no information on this

27. The Cambridge scientists' discovery of the 'thermometer molecule' caused surprise among other scientists.
28. The target for agricultutal production by 2050 could be missed.
29. Wheat and rice suffer from a rise in temperatures.
30. It may be possible to develop crops that require less water.
31. Plants grow faster in sunlight than in shade.
32. Phytochromes change their state at the same speed day and night.
Questions 33-37

Reading Passage 3 has eight sections, A-H.

Which section contains the following information?

Write the correct letter, A-H, in boxes 33-37 on your answer sheet.


A. Section A
B. Section B
C. Section C
D. Section D
E. Section E
F. Section F
G. Section G
H. Section H
33. mention of specialists who can make use of the research findings
33
34. a reference to a potential benefit of the research findings
34
35. scientific support for a traditional saying
35
36. a reference to people traditionally making plans based on plant behaviour
36
37. a reference to where the research has been reported
37
Questions 38-40

Complete the sentences below.

Choose NO MORE THAN TWO WORDS from the passage for each answer.

Write your answers in boxes 38-40 on your answer sheet.

答案与解析
练习推荐
我的答案
27.
未作答
28.
未作答
29.
未作答
30.
未作答
31.
未作答
32.
未作答
正确答案
27.
NOT GIVEN
28.
TRUE
29.
TRUE
30.
NOT GIVEN
31.
FALSE
32.
FALSE
题目解析

题目关键词:Cambridge scientist, thermometer molecule, surprise
答案位置:A 部分第 1 小节
题解:题目:剑桥科学家发现的“温度计分子”震惊了其他科学家。 
据人名和引号部分定位可知,原文确实提及剑桥大学的科学家发现了植物中的“温度计”,但并未提及任何其他科学家的反应,因此答案为 NOT GIVEN。

题目关键词:target…could be missed, 2050
答案位置:D 部分第 4—5 行
题解:题目:2050 年的农业生产目标可能无法实现。 
据年份 2050 可定位到 D 部分。文中提及,据估计,到 2050 年,农业产量需要翻一番(to double by 2050),但气候变化是实现这一目标的主要威胁(a major threat to achieving this)。在 2050 年产量翻一番,即题目中说到的 target,而气候变化是主要威胁,可能导致目标无法完成,即题目中的 could be missed,因此答案为 TRUE。

题目关键词:wheat and rice, suffer, rise
答案位置:D 部分第 4—7 行
题解:题目:温度升高会对小麦和水稻造成不良影响。
本题与上题有相关性。根据上文,Wiggle 博士已经提出,由于气候变化(全球气候变暖),2050 年生产目标有可能完不成。那么接下来就是进行解释原因。因此,后文提到主要粮食作物小麦和水稻(wheat and rice)的时候,虽然只是说到了它们对高温敏感(sensitive to),但根据逻辑依然可以推断这便是题目中的 suffer from,毕竟此处是在解释为何上述目标完不成。而后文中的温度升高 1 度,作物产量就会减少 10%,是进一步论证上述 sensitive to high temperatures,带来的是负面的影响,因此答案为 TRUE。

题目关键词:possible, require less water
答案位置:D 部分最 后 3 行
题解:题目:培育出更耐旱的农作物是有可能的。 
本题有些难以定位。根据判断题的顺序原则,在难以定位的情况下,可以先去观察下一道题的定位句,从而通过上下两题之间的文章部分来判断。第 31 题的关键词出现在 E 段第 1 小节的第 3 行。因此,第 30 题的位置应该在 D 部分段末到 E 部分开头。文中提及的剑桥大学研究人员发现表明,让植物感知温度的分子有可能加快培育出能适应高温压力和气候变化(thermal stress and climate change)的作物,并没有提到培育出更耐旱(require less water)的作物,因此答案为 NOT GIVEN。

题目关键词:faster, sunlight, shade
答案位置:E 部分第 1 小节第 3— 4 行
题解:题目:植物在阳光下比在阴影中长得更快。 
原文提及,如果一株植物位于阴凉处(finds itself in shade),光敏色素便会很快失活,这促使植物生长得更快(to grow faster),以便再次找到阳光。这与题目中阳光下长得比在阴影中快正好相反, 因此答案为 FALSE。

题目关键词:the same speed, day and night
答案位置:E 部分第 1 小节最后 2 行;第 2 小节第 1— 2 行
题解:题目:光敏色素改变状态的速度在夜间与在白昼 一致。
本题在原文中的描述由两个部分构成,E 部分第 1 小节提到,光驱动的光敏色素变化发生得很快(very fast),不到 1 秒钟;而第 2 小节开头提到,到了晚上,情况就不同了(it’s a different story)。太阳下山后,光敏色素分子并没有迅速产生灭活作用, 而是逐渐(gradually)从活跃状态变为不活跃状态。 对比两句话中的表示速度的词:very fast 和 gradually,再结合“it’s a different story”可知,光敏色素昼夜的变化速度并不相同,因此答案为 FALSE。

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