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纳米技术在可持续农业中的应用进展:植物生长调节和营养方面的现有知识和前景。

Nanotechnology advances for sustainable agriculture: current knowledge and prospects in plant growth modulation and nutrition.

机构信息

Centro de Excelencia en Investigación Biotecnológica Aplicada al Medio Ambiente (CIBAMA-BIOREN), Facultad de Ingeniería y Ciencias, Universidad de La Frontera, Avenida Francisco Salazar 01145, Temuco, Chile.

Departamento de Ingeniería Química, Universidad de La Frontera, Av. Francisco Salazar 01145, Casilla 54-D, Temuco, Chile.

出版信息

Planta. 2021 Sep 7;254(4):66. doi: 10.1007/s00425-021-03714-0.

Abstract

Advances in nanotechnology make it an important tool for improving agricultural production. Strong evidence supports the role of nanomaterials as nutrients or nanocarriers for the controlled release of fertilizers to improve plant growth. Scientific research shows that nanotechnology applied in plant sciences is smart technology. Excessive application of mineral fertilizers has produced a harmful impact on the ecosystem. Furthermore, the projected increase in the human population by 2050 has led to the search for alternatives to ensure food security. Nanotechnology is a promising strategy to enhance crop productivity while minimizing fertilizer inputs. Nanofertilizers can contribute to the slow and sustainable release of nutrients to improve the efficiency of nutrient use in plants. Nanomaterial properties (i.e., size, morphology and charge) and plant physiology are crucial factors that influence the impact on plant growth. An important body of scientific research highlights the role of carbon nanomaterials, metal nanoparticles and metal oxide nanoparticles to improve plant development through the modulation of physiological and metabolic processes. Modulating nutrient concentrations, photosynthesis processes and antioxidant enzyme activities have led to increases in shoot length, root development, photosynthetic pigments and fruit yield. In parallel, nanocarriers (nanoclays, nanoparticles of hydroxyapatite, mesoporous silica and chitosan) have been shown to be an important tool for the controlled and sustainable release of conventional fertilizers to improve plant nutrition; however, the technical advances in nanofertilizers need to be accompanied by modernization of the regulations and legal frameworks to allow wider commercialization of these elements. Nanofertilizers are a promising strategy to improve plant development and nutrition, but their application in sustainable agriculture remains a great challenge. The present review summarizes the current advance of research into nanofertilizers, and their future prospects.

摘要

纳米技术的进步使其成为提高农业生产的重要工具。有强有力的证据表明,纳米材料可用作营养物质或纳米载体,以控制肥料的释放,从而促进植物生长。科学研究表明,应用于植物科学的纳米技术是一种智能技术。过量施用矿物肥料已经对生态系统产生了有害影响。此外,预计到 2050 年人口将增加,这促使人们寻求替代方案来确保粮食安全。纳米技术是提高作物生产力的一种很有前途的策略,同时可以减少化肥的投入。纳米肥料可以促进养分的缓慢和可持续释放,提高植物对养分的利用效率。纳米材料的性质(例如,大小、形态和电荷)和植物生理学是影响其对植物生长影响的关键因素。大量科学研究强调了碳纳米材料、金属纳米粒子和金属氧化物纳米粒子的作用,它们通过调节生理和代谢过程来改善植物发育。调节养分浓度、光合作用过程和抗氧化酶活性可导致茎长、根系发育、光合色素和果实产量增加。同时,纳米载体(纳米粘土、纳米羟基磷灰石、介孔硅和壳聚糖)已被证明是控制和可持续释放常规肥料以改善植物营养的重要工具;然而,纳米肥料的技术进步需要伴随着法规和法律框架的现代化,以允许更广泛地商业化这些元素。纳米肥料是改善植物发育和营养的一种很有前途的策略,但它们在可持续农业中的应用仍然是一个巨大的挑战。本综述总结了纳米肥料研究的最新进展及其未来前景。

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