scholarly journals Transformation of the Food Sector: Security and Resilience during the COVID-19 Pandemic

Foods ◽  
2021 ◽  
Vol 10 (3) ◽  
pp. 497
Author(s):  
Cennet Pelin Boyacι-Gündüz ◽  
Salam A. Ibrahim ◽  
Ooi Chien Wei ◽  
Charis M. Galanakis

The ongoing COVID-19 pandemic has resulted in a new era in the efficacy of the food supply chain, while the consequences of this new era on humanity, the economy, and the food sector are still under examination. For example, food security is one vital aspect of food systems which is directly affected. This review summarizes food security during epidemics and pandemics before moving on to panic buying, food shortages, and price spikes observed during the current crisis. The importance of food resilience, together with the need for addressing issues related to food loss and food waste, is underlined in the review towards food security and sustainable development. As a result, the pandemic has shown that our food systems are fragile. Since the global population and urbanization will grow in the coming decades, pandemics will likely occur more often, and climate change will intensify. Consequently, there is a need to ensure that our food systems become more sustainable and resilient. To that end, we have highlighted the need to develop contingency plans and mitigation strategies that would allow a more rapid response to extreme events (e.g., disasters from climate change) and transform the food sector by making it more resilient.

Economics ◽  
2021 ◽  
Vol 104 (6-9) ◽  
pp. 68-84
Author(s):  
Paata Koguashvili Paata Koguashvili ◽  
Leila Gegenava Leila Gegenava

The world is facing changes that have a significant impact on the environment and every aspect of human life. Currently, 588 million of the world's 7.8 billion people live in extreme poverty, 820 million people are starving, and 2.5 billion suffer from some form of micronutrient deficiency. The population is growing, the processes of aging and migration to urban settlements are actively underway, which is reflected in agricultural production and food demand. At the same time, the impact of the effects of climate change on the state of food security in the world is noteworthy. In addition, inequality, discrimination, and human rights abuses (including the right to adequate and safe human food) exacerbate these consequences, especially for small farms. According to the FAO, 33% of world population growth is expected in the near future. The population, from the existing 7.7 billion, will reach almost 10 billion by 2050. The population growth will lead to a strong increase in food demand. By 2050, it will be necessary to produce 70 percent more than 50-types foods, while the share of agriculture in global GDP is about 4%. While investments and innovations in the agricultural sector are increasing, the growth rate of yields is quite low. The rural population is declining and the aging process is actively underway, which has a serious impact on the labor force. Added to this is the fact that the current use of natural resources is irrational and under severe pressure. Twenty-five percent of agricultural land is severely degraded and land has long been recognized as a limited resource, while water resources are under heavy strain and there is a shortage of water in the world. Food losses and waste are an inefficient side of the sector and a strong threat to the environment. Up to 33% to 50% of the world produced food is never used for food, and the cost of these products exceeds $ 1 trillion. These trends have led to the problem of food shortages. As a result, poverty and hunger have intensified in the world. Moreover, there are four main factors that put pressure on the inherited model of agricultural production, without their solution the sector will not be able to cope with future demands. They are exacerbating the problem of hunger and food shortages in the world, putting pressure on agriculture and the ability of the sector to be able to meet future needs. These factors include: demographics, scarcity of natural resources, climate change, and food losses and waste. In Summary, overcoming these challenges requires the joint efforts of governments, investors, and innovative agricultural technologies to increase productivity and support the transition to an economy based on innovation and knowledge. Modern farms and enterprises have to work differently, mainly due to the use of technological advantages. In the future, agriculture must use sophisticated technologies and advanced equipment. Precision farming and the use of robotic systems ensure more profitable, efficient, safe and environmentally friendly agricultural production. According to the FAO report, these efforts require considerable resources: to eradicate hunger by 2030 and deal with the demographic pressures that will require an annual investment of $ 265 billion. Keywords: Agri-food sector, poverty, hunger, food security, food losses and waste.


Author(s):  
Gayatri Sahu ◽  
Pragyan Paramita Rout ◽  
Suchismita Mohapatra ◽  
Sai Parasar Das ◽  
Poonam Preeti Pradhan

World population is increasing day by day and at the same time agriculture is threatened due to natural resource degradation and climate change. A growing global population and changing diets are driving up the demand for food. The food security challenge will only become more difficult, as the world will need to produce about 70 percent more food by 2050 to feed an estimated 9 billion people. Production stability, agricultural productivity, income and food security is negatively affected by changing climate. Therefore, agriculture must change according to present situation for meeting the need of food security and also withstanding under changing climatic situation. Agriculture is a prominent source as well as a sink of greenhouse gases (GHGs). So, there is a need to modify agricultural practices in a sustainable way to overcome these problems. Developing climate smart agriculture is thus crucial to achieving future food security and climate change goals. It helps the agricultural system to resist damage and recover quickly by adaptation and mitigation strategies. Sustainable Intensification is an essential means of adapting to climate change, also resulting in lower emissions per unit of output. With its emphasis on improving risk management, information flows and local institutions to support adaptive capacity, CSA provides the foundations for incentivizing and enabling intensification. Since climate smart agriculture is defined along three pillars (productivity increases, building resilience and adapting, and GHG emission reduction), key concepts such as productivity, resilience, vulnerability and carbon sequestration provide indicators for future empirical measurements of the climate smart agriculture concept.


2005 ◽  
Vol 360 (1463) ◽  
pp. 2139-2148 ◽  
Author(s):  
P.J Gregory ◽  
J.S.I Ingram ◽  
M Brklacich

Dynamic interactions between and within the biogeophysical and human environments lead to the production, processing, distribution, preparation and consumption of food, resulting in food systems that underpin food security. Food systems encompass food availability (production, distribution and exchange), food access (affordability, allocation and preference) and food utilization (nutritional and societal values and safety), so that food security is, therefore, diminished when food systems are stressed. Such stresses may be induced by a range of factors in addition to climate change and/or other agents of environmental change (e.g. conflict, HIV/AIDS) and may be particularly severe when these factors act in combination. Urbanization and globalization are causing rapid changes to food systems. Climate change may affect food systems in several ways ranging from direct effects on crop production (e.g. changes in rainfall leading to drought or flooding, or warmer or cooler temperatures leading to changes in the length of growing season), to changes in markets, food prices and supply chain infrastructure. The relative importance of climate change for food security differs between regions. For example, in southern Africa, climate is among the most frequently cited drivers of food insecurity because it acts both as an underlying, ongoing issue and as a short-lived shock. The low ability to cope with shocks and to mitigate long-term stresses means that coping strategies that might be available in other regions are unavailable or inappropriate. In other regions, though, such as parts of the Indo-Gangetic Plain of India, other drivers, such as labour issues and the availability and quality of ground water for irrigation, rank higher than the direct effects of climate change as factors influencing food security. Because of the multiple socio-economic and bio-physical factors affecting food systems and hence food security, the capacity to adapt food systems to reduce their vulnerability to climate change is not uniform. Improved systems of food production, food distribution and economic access may all contribute to food systems adapted to cope with climate change, but in adopting such changes it will be important to ensure that they contribute to sustainability. Agriculture is a major contributor of the greenhouse gases methane (CH 4 ) and nitrous oxide (N 2 O), so that regionally derived policies promoting adapted food systems need to mitigate further climate change.


2011 ◽  
Vol 11 (1) ◽  
pp. 191 ◽  
Author(s):  
Unai Pascual ◽  
Ulf Narloch ◽  
Stella Nordhagen ◽  
Adam G. Drucker

<span>Subsistence-based and natural resource-dependent societies are especially vulnerable to climate change. In such contexts, food security needs to be strengthened by investing in the adaptability of food systems. This paper looks into the role of agrobiodiversity conservation for food security in the face of climate change. It identifies agrobiodiversity as a key public good that delivers necessary services for human wellbeing. We argue that the public values provided by agrobiodiversity conservation need to be demonstrated and captured. We offer an economic perspective of this challenge and highlight ways of capturing at least a subset of the public values of agrobiodiversity to help adapt to and reduce the vulnerability of subsistence based economies to climate change.</span>


2018 ◽  
Vol 33 (3) ◽  
pp. 297-308 ◽  
Author(s):  
Meredith T. Niles ◽  
Richie Ahuja ◽  
Todd Barker ◽  
Jimena Esquivel ◽  
Sophie Gutterman ◽  
...  

AbstractA large body of research has explored opportunities to mitigate climate change in agricultural systems; however, less research has explored opportunities across the food system. Here we expand the existing research with a review of potential mitigation opportunities across the entire food system, including in pre-production, production, processing, transport, consumption and loss and waste. We detail and synthesize recent research on the topic, and explore the applicability of different climate mitigation strategies in varying country contexts with different economic and agricultural systems. Further, we highlight some potential adaptation co-benefits of food system mitigation strategies and explore the potential implications of such strategies on food systems as a whole. We suggest that a food systems research approach is greatly needed to capture such potential synergies, and highlight key areas of additional research including a greater focus on low- and middle-income countries in particular. We conclude by discussing the policy and finance opportunities needed to advance mitigation strategies in food systems.


2021 ◽  
Vol 13 (3) ◽  
pp. 1063
Author(s):  
Zhitao Xu ◽  
Adel Elomri ◽  
Abdelfatteh El Omri ◽  
Laoucine Kerbache ◽  
Hui Liu

The COVID-19 pandemic and locust swarm outbreaks pose a significant threat to global food systems, causing severe disruptions in both local and international food supplies from farm to fork. The main objective of this study is to understand and identify the disruptions during the crises and create a map of how resilience can be established to recover and sustain the food supply chain (FSC) functions as well as food security. The detrimental impacts of the compound crises on the FSC are explored and the effects of the affected areas are estimated under optimistic and pessimistic scenarios. As a response to the disruption caused by the crisis in FSCs, reactive and proactive solutions are proposed to develop resilience at the food sector level. In the short term, the reactive solutions, consisting of smoothing the food demand, supply and delivery, and food production and processing, can be borrowed. In the long term, the proactive solutions can be conducted by developing multi-level short intertwined FSCs. Our comprehensive investigation of the resilience elements in diverse operations and potential strategies should contribute to the improvement of FSC resilience in the face of ongoing and growing threats.


2021 ◽  
Vol 4 ◽  
Author(s):  
Ulrike Grote ◽  
Anja Fasse ◽  
Trung Thanh Nguyen ◽  
Olaf Erenstein

There is an ongoing debate about how best to feed the growing world population in the long run and associated implications for research and development. Some call for a new Green Revolution to secure the supply of staple foods, whereas others emphasize the importance of diversifying and improving people's diets. We aim to contribute to this debate by reviewing the case of wheat and maize value chains and their contribution to food security in Africa and Asia. We first identify drivers transforming food systems. We then apply these to the cereal value chains and disentangle their effects on food security. We thereby add to the three strands in the literature around production, consumption, and food system transformation and point to different research needs and recommendations for the future. The review highlights: (1) Wheat and maize production will be increasingly impaired by ecological drivers such as land degradation, water scarcity and climate change. (2) There are promising innovations to increase and maintain productivity, but constraints in adopting these innovations have to be overcome (i.e., access to seeds, finance, and education/training). (3) The drivers affect all four dimensions of food security, but first and foremost they determine the availability and stability of maize and wheat. This indirectly also influences the economic and physical access of people to maize and wheat. (4) Research tends to focus on improving the productivity and sustainability of wheat and maize farming which is largely interlinked with the availability dimension of food security. (5) The stability and utilization dimension of food security merits continued yet increased support. First, to address climate change and implications for biotic and abiotic stresses. Second, to promote healthier diets and enable the equitable transformation of food systems.


2020 ◽  
Vol 27 (1) ◽  
pp. 015-020
Author(s):  
F. Abel Ponce de León ◽  
Gustavo A. Gutierrez

Developing countries have the challenge of achieving food security in a world context that is affected by climate change and global population growth. Molecular Genetics and genomics are proposed as technologies that will help to achieve sustainable food security. Technologies that have been developed in the last decade such as the development of genetic markers, genetic maps, genomic selection, next-generation sequencing, and DNA editing systems are discussed. Examples of some discoveries and achievements are provided.


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