Plant Growth and Climate Change. Biological Sciences Series. Edited by James I L  Morison and , Michael D  Morecroft. Ames (Iowa): Blackwell Publishing Professional. $199.99. xiv + 213 p + 6 pl; ill.; index. ISBN: 1‐4051‐3192‐6. 2006.

2007 ◽  
Vol 82 (4) ◽  
pp. 436-437 ◽  
Author(s):  
Bruce A Kimball
2018 ◽  
Vol 18 (1) ◽  
pp. 28 ◽  
Author(s):  
Wendy Achmmad Mustaqim

Optimum plant growth depends on numerous ecological factors. In relation to this theme, there is an old law called Law of the Minimum Liebig. The postulate discussed the growth of the plant that is determined by the scarcest environmental factors. It is one of the oldest ecological postulate proposed more than one and a half-century ago. It has become one of the most important foundations for agriculture and biology, even the in contemporary biology. This short review will provide the history, principles, development and criticism, and applications in some recent biological sciences, including evolution, conservation, ecological indicator and even climate change.


2021 ◽  
Vol 22 (15) ◽  
pp. 7877
Author(s):  
Fahimeh Shahinnia ◽  
Néstor Carrillo ◽  
Mohammad-Reza Hajirezaei

Environmental adversities, particularly drought and nutrient limitation, are among the major causes of crop losses worldwide. Due to the rapid increase of the world’s population, there is an urgent need to combine knowledge of plant science with innovative applications in agriculture to protect plant growth and thus enhance crop yield. In recent decades, engineering strategies have been successfully developed with the aim to improve growth and stress tolerance in plants. Most strategies applied so far have relied on transgenic approaches and/or chemical treatments. However, to cope with rapid climate change and the need to secure sustainable agriculture and biomass production, innovative approaches need to be developed to effectively meet these challenges and demands. In this review, we summarize recent and advanced strategies that involve the use of plant-related cyanobacterial proteins, macro- and micronutrient management, nutrient-coated nanoparticles, and phytopathogenic organisms, all of which offer promise as protective resources to shield plants from climate challenges and to boost stress tolerance in crops.


2021 ◽  
Author(s):  
Lena Reifschneider ◽  
Vinzenz Franz Eichinger ◽  
Evelin Pihlap ◽  
Noelia Garcia-Franco ◽  
Anna Kühnel ◽  
...  

<p>The application of rock powder is an option to improve soil fertility while valorising the overburden material produced by industries. The “enhanced weathering” of silicate rock has also gained recent interest in the scientific community for its potential to mitigate climate change. However, the effect of rock powder on the soil physical properties remains unclear, especially under climate change (e.g., increasing drought events). Prior to any large scale application of rock powder, it is crucial to disentangle the potential effects of rock powder application on its environment. In a mesocosm experiment, we explored the effect of three rock powders on plant biomass, soil aggregation and organic carbon (OC) allocation within aggregates, in two soils with clayey and sandy textures, under regular watering or severe drought conditions. We demonstrate that the rock powder was the third factor after drought and soil texture significantly affecting the plant growth, resulting in a significant plant biomass decrease ranging from - 13 % to - 42 % compared with the control. We mainly attribute this effect to the increase of the already neutral soil pH, along with the release of excessive heavy metal amounts at a toxic range for the plant. Yet, we found that adding rock powder to the soil resulted in an increase of the relative amount of microaggregates in the soil by up to + 70 %, along with a re-distribution of OC within the fine fractions of the soil (up to + 32 % of OC in < 250 µm fractions). The new mineral-mineral and organo-mineral interactions promoted by the rock powder addition could potentially favour OC persistence in soil on the long term. With our results, we insist on the potential risks for plant growth associated to the application of rock powder when not handled properly. In addition to the current enthusiasm around the capacity of rock powder to enhance carbon sequestration in the inorganic form, we also encourage scientists to focus their research on its effect on soil structure properties and OC storage.</p>


2021 ◽  
pp. 335-357
Author(s):  
Archi Chaurasia ◽  
Chitrakshi Shandilya ◽  
Isabell Robert Rupa ◽  
Nitin Kumar ◽  
Ajit Varma ◽  
...  

PLoS Biology ◽  
2015 ◽  
Vol 13 (6) ◽  
pp. e1002167 ◽  
Author(s):  
Camilo Mora ◽  
Iain R. Caldwell ◽  
Jamie M. Caldwell ◽  
Micah R. Fisher ◽  
Brandon M. Genco ◽  
...  
Keyword(s):  

2019 ◽  
Vol 81 (4) ◽  
pp. 256-268
Author(s):  
Yamina Pressler ◽  
Mary Hunter-Laszlo ◽  
Sarah Bucko ◽  
Beth A. Covitt ◽  
Sarah Urban ◽  
...  

We designed two NGSS-aligned middle school classroom experiments to investigate the effects of biochar on plant growth and soil respiration. Biochar is a carbon-rich material, produced by heating organic matter under limited oxygen, that is added to soils to improve fertility, to promote plant growth, and as one possible strategy to help mitigate climate change. The experiments offer an ideal case study for students learning fundamentals of soil and plant interactions. Soils and biochar are accessible, are connected to global issues such as agriculture and climate change, and are the focus of ongoing research in soil science. These classroom experiments promote authentic science because students design replicated experiments, collect and analyze data, discuss variability in the data, and interpret their results in the context of recent research.


2014 ◽  
Vol 94 (6) ◽  
pp. 1085-1089 ◽  
Author(s):  
D. T. Britto ◽  
K. D. Balkos ◽  
A. Becker ◽  
D. Coskun ◽  
W. Q. Huynh ◽  
...  

Britto, D. T., Balkos, K. D., Becker, A., Coskun, D., Huynh, W. Q. and Kronzucker, H. J. 2014. Potassium and nitrogen poising: Physiological changes and biomass gains in rice and barley. Can. J. Plant Sci. 94: 1085–1089. Soil nitrogen, potassium, and water are three of the most important factors influencing, often interdependently, the growth of plants. Maximizing plant growth is not simply a matter of maximizing the availability of these and other nutrients; indeed, excess supply can be deleterious to plant performance. Rather, optimal performance may come about by adjusting the supply of each of the disparate factors required for plant growth, not only individually, but in relation to one another. In our work investigating the nutritional maximization of plant growth, we have found that altering the ratios of N and K provided to seedlings of cereal grasses can result in very substantial increases in vegetative biomass accrual, e.g., >220% of low-K+ controls, in short-term studies with rice, the world's most important cereal grain, and even greater gains in grain yield, in the longer term. Hence, the findings in our laboratory are of direct relevance to the aim of NSERC's Green Crop Network, which was to contribute to the amelioration of climate change by improvement of carbon capture and sequestration in crop plants. In addition, these findings may help to increase the world's food supply, the security of which is sometimes at odds with proposed means to thwart climate change. Our work in this area has also led to a potential breakthrough of a more fundamental sort in plant nutritional biology, which may in itself have important practical implications: evidence that aquaporin-type transport proteins conduct rapid NH3 fluxes into roots at toxic levels of external ammonia/ammonium.


2019 ◽  
Vol 47 (4) ◽  
pp. 185-194
Author(s):  
A. V. Gebruk ◽  
S. V. Pisarev ◽  
N. A. Shishkina

The article is dedicated to the anniversary of Igor Alekseevich Melnikov, chief researcher at the Institute of Oceanology, Doctor of Biological Sciences. Out of 50 years of work at the Institute of IO RAS, four decades of his scientific activity are devoted to research in the Arctic and Antarctic. Starting from the International Polar Year in 2007 to the present, I.A. Melnikov conducts bipolar monitoring of marine water-ice ecosystems that are affected by climate change. His scientific views were widely reflected in both the specialized and periodicals, as well as in radio and television appearances. I.A. Melnikov was awarded the title “Honorable Polar Explorer”, awarded the Order of the “Trudovogo Krasnogo Znameny”, and for scientific research using scuba gear under the ice of the Arctic and Antarctic, he was awarded the UNESCO International Grand Prix.


Author(s):  
Nguyen Thi Hoang Anh ◽  
Mai Kim Lien

Climate change is driving dangerous and more unpredictable weather. It has broken historical records of hydro-meteorological observations, consequently leading challenges in operational forecasting. In order to improve crop yield and reduce impacts of climate change on agricultural production, it is necessary to obtain sources of weather information. The estimations of rainfall and PET can enable us to identify plant growth and water supply capacity for any plant in the mountainous areas at Quy Hop District, Nghe An (one part of the North Central Coast) on a monthly basis. The updated information on weather forecasting technology and the application of modern technology responding to climate change in Quy Hop provided results related to cumulative rainfall chart. It can forecast accurately the plant growth and the best time for watering plants and plays an important role in the agricultural production.  


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