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      Perspectives of Microbial Inoculation for Sustainable Development and Environmental Management

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          Abstract

          How to sustainably feed a growing global population is a question still without an answer. Particularly farmers, to increase production, tend to apply more fertilizers and pesticides, a trend especially predominant in developing countries. Another challenge is that industrialization and other human activities produce pollutants, which accumulate in soils or aquatic environments, contaminating them. Not only is human well-being at risk, but also environmental health. Currently, recycling, land-filling, incineration and pyrolysis are being used to reduce the concentration of toxic pollutants from contaminated sites, but too have adverse effects on the environment, producing even more resistant and highly toxic intermediate compounds. Moreover, these methods are expensive, and are difficult to execute for soil, water, and air decontamination. Alternatively, green technologies are currently being developed to degrade toxic pollutants. This review provides an overview of current research on microbial inoculation as a way to either replace or reduce the use of agrochemicals and clean environments heavily affected by pollution. Microorganism-based inoculants that enhance nutrient uptake, promote crop growth, or protect plants from pests and diseases can replace agrochemicals in food production. Several examples of how biofertilizers and biopesticides enhance crop production are discussed. Plant roots can be colonized by a variety of favorable species and genera that promote plant growth. Microbial interventions can also be used to clean contaminated sites from accumulated pesticides, heavy metals, polyaromatic hydrocarbons, and other industrial effluents. The potential of and key processes used by microorganisms for sustainable development and environmental management are discussed in this review, followed by their future prospects.

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          Plant Growth-Promoting Bacteria: Mechanisms and Applications

          The worldwide increases in both environmental damage and human population pressure have the unfortunate consequence that global food production may soon become insufficient to feed all of the world's people. It is therefore essential that agricultural productivity be significantly increased within the next few decades. To this end, agricultural practice is moving toward a more sustainable and environmentally friendly approach. This includes both the increasing use of transgenic plants and plant growth-promoting bacteria as a part of mainstream agricultural practice. Here, a number of the mechanisms utilized by plant growth-promoting bacteria are discussed and considered. It is envisioned that in the not too distant future, plant growth-promoting bacteria (PGPB) will begin to replace the use of chemicals in agriculture, horticulture, silviculture, and environmental cleanup strategies. While there may not be one simple strategy that can effectively promote the growth of all plants under all conditions, some of the strategies that are discussed already show great promise.
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            Science for managing ecosystem services: Beyond the Millennium Ecosystem Assessment.

            The Millennium Ecosystem Assessment (MA) introduced a new framework for analyzing social-ecological systems that has had wide influence in the policy and scientific communities. Studies after the MA are taking up new challenges in the basic science needed to assess, project, and manage flows of ecosystem services and effects on human well-being. Yet, our ability to draw general conclusions remains limited by focus on discipline-bound sectors of the full social-ecological system. At the same time, some polices and practices intended to improve ecosystem services and human well-being are based on untested assumptions and sparse information. The people who are affected and those who provide resources are increasingly asking for evidence that interventions improve ecosystem services and human well-being. New research is needed that considers the full ensemble of processes and feedbacks, for a range of biophysical and social systems, to better understand and manage the dynamics of the relationship between humans and the ecosystems on which they rely. Such research will expand the capacity to address fundamental questions about complex social-ecological systems while evaluating assumptions of policies and practices intended to advance human well-being through improved ecosystem services.
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              Microbial heavy-metal resistance.

              D. Nies (1999)
              We are just beginning to understand the metabolism of heavy metals and to use their metabolic functions in biotechnology, although heavy metals comprise the major part of the elements in the periodic table. Because they can form complex compounds, some heavy metal ions are essential trace elements, but, essential or not, most heavy metals are toxic at higher concentrations. This review describes the workings of known metal-resistance systems in microorganisms. After an account of the basic principles of homoeostasis for all heavy-metal ions, the transport of the 17 most important (heavy metal) elements is compared.
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                Author and article information

                Contributors
                Journal
                Front Microbiol
                Front Microbiol
                Front. Microbiol.
                Frontiers in Microbiology
                Frontiers Media S.A.
                1664-302X
                05 December 2018
                2018
                : 9
                : 2992
                Affiliations
                [1] 1Department of Soil Science, University College of Agriculture and Environmental Sciences, The Islamia University of Bahawalpur , Bahawalpur, Pakistan
                [2] 2Institute of Agricultural Sciences in the Tropics (Hans-Ruthenberg-Institute), University of Hohenheim , Stuttgart, Germany
                [3] 3Institute of Soil and Environmental Sciences, University of Agriculture Faisalabad , Faisalabad, Pakistan
                [4] 4World Vegetable Center , Tainan, China
                [5] 5Inland Norway University of Applied Sciences , Elverum, Norway
                Author notes

                Edited by: Mariusz Cycoń, Medical University of Silesia, Poland

                Reviewed by: Mohammad Oves, King Abdulaziz University, Saudi Arabia; Anna Gałązka, Institute of Soil Science and Plant Cultivation, Poland; Monika Dąbrowska, Jagiellonian University Medical College, Poland

                *Correspondence: Thomas H. Hilger thomas.hilger@ 123456uni-hohenheim.de

                This article was submitted to Microbiotechnology, Ecotoxicology and Bioremediation, a section of the journal Frontiers in Microbiology

                Article
                10.3389/fmicb.2018.02992
                6289982
                30568644
                4087649f-5f44-4a02-9e22-62d9ae3f9008
                Copyright © 2018 Ahmad, Pataczek, Hilger, Zahir, Hussain, Rasche, Schafleitner and Solberg.

                This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.

                History
                : 07 September 2018
                : 19 November 2018
                Page count
                Figures: 2, Tables: 4, Equations: 0, References: 306, Pages: 26, Words: 23878
                Categories
                Microbiology
                Review

                Microbiology & Virology
                biopesticides,phytoremediation,pollution,mitigation strategies,soil microbes,sustainability

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