Submitted Successfully!
To reward your contribution, here is a gift for you: A free trial for our video production service.
Thank you for your contribution! You can also upload a video entry or images related to this topic.
Version Summary Created by Modification Content Size Created at Operation
1 + 3653 word(s) 3653 2021-11-26 07:52:04

Video Upload Options

We provide professional Video Production Services to translate complex research into visually appealing presentations. Would you like to try it?

Confirm

Are you sure to Delete?
Cite
If you have any further questions, please contact Encyclopedia Editorial Office.
Miteluţ, A.C. Edible Coatings. Encyclopedia. Available online: https://encyclopedia.pub/entry/17808 (accessed on 16 November 2024).
Miteluţ AC. Edible Coatings. Encyclopedia. Available at: https://encyclopedia.pub/entry/17808. Accessed November 16, 2024.
Miteluţ, Amalia Carmen. "Edible Coatings" Encyclopedia, https://encyclopedia.pub/entry/17808 (accessed November 16, 2024).
Miteluţ, A.C. (2022, January 06). Edible Coatings. In Encyclopedia. https://encyclopedia.pub/entry/17808
Miteluţ, Amalia Carmen. "Edible Coatings." Encyclopedia. Web. 06 January, 2022.
Edible Coatings
Edit

Edible coatings have been intensively developed and studied because of their capacity to improve the quality, shelf life, safety, and functionality of the treated products. Edible coatings can be applied through different techniques, like dipping, spraying, or coating, in order to control moisture transfer, gas exchange, or oxidative processes. Furthermore, some functional ingredients can be incorporated into an edible matrix and applied on the surface of foods, thus enhancing safety or even nutritional and sensory attributes. In the case of coated fruits and vegetables, their quality parameters, such as color, firmness, microbial load, decay ratio, weight loss, sensorial attributes, and nutritional parameters, are very specific to the type of products and their storage conditions should be carefully monitored.

edible coatings fruits vegetables shelf life functional coatings

1. Introduction

During storage, food is subjected to a process of quality degradation, this phenomenon being a major problem faced by food producers, contributing significantly to food waste. In the last years, novel and smart food processing technologies (Ultra High Pressure, Pulsed Electric Field, Modified Atmosphere Packaging, Radio Frequency, Active Packaging, and others) were developed with the aim of contributing to food preservation extension, shelf life-prolonging, and, consequently, food waste reduction [1][2][3][4]. However, not all of these novel technologies represent a real solution in the market due to their impact on consumers’ attitudes [5][6].
In the last decades, the food products consumer market developed some changes in terms of sustainability and health implications of food processing and packaging [7]. Moreover, consumers are looking for less processed products or minimally processed products which have a convenient preservation period, are healthy, and present great nutritional value. These requirements are more stringent when discussing highly perishable food products, such as fruits and vegetables. This increasing demand is now a real challenge to food producers in order to develop pertinent and sustainable preservation techniques [8].
A novel way to diminish this problem is the use of edible packaging, edible coatings, or edible films, which can provide an additional protective layer(s) for fresh products, thus increasing their shelf life by delaying the microbial spoilage and providing moisture and gas barrier properties [9].
Nowadays, consumers prefer food less processed and healthier food products and so the research activity on edible packaging systems is rising every year. Edible films and coatings are designed as a primary packaging material for foodstuffs having edible components and so as to help to maintain sensorial properties such as aroma, taste, and appearance. Fruits and vegetables that are coated with edible films have longer shelf lives and their ripening processes are delayed [7][10].
Edible coatings have been used since the 12th and 13th centuries in China, where a thin coat of wax was applied on orange fruits. In the 15th century, it was discovered that Japan designed an edible coating material made from boiled soybeans, which was applied on different food products in order to improve their appearance [11].
In recent years, the market share of edible packaging has seen an increase, being valued at $697 million in 2016, and by 2023 it is expected to grow to $1097 million [12]. There are two distinct ways in which edible packaging can be used in the food industry. Edible coatings can be applied directly to the food product or can be wrapped around the food product in the form of a preformed film [13].
Although edible coatings and films can help prolong the shelf life of different food products, the food industry faces the challenge of consumer acceptance towards novel processing techniques [14]. Understanding how consumers form and perceive attitudes in relation to new technologies and products is important for food chain innovation since consumer acceptance is crucial to the development of successful food products [1][15]. Several studies regarding consumer acceptance towards novel processing technologies and techniques have been made, i.e., nanotechnology [16], radio frequency [6] food irradiation [17], and edible films and coatings [18][19].

2. Composition and Methods of Application of Edible Coatings

An edible coating is generally defined as a coating layer made from chemical or biological materials which are applied as a thin layer or layers on the product surface in order to prevent gaseous exchange, thus retarding the ripening process. Another definition for edible coatings was given by Baldwin et al. (2011) [20], defining them as a thin comestible layer that can be applied to the fruit’s surface in order to create a barrier between the fruit and the environment. Jongsri et al. (2016) [21] stated that edible coatings must provide a partial barrier to water movement, so moisture loss can be reduced, and, at the same time, can modify the atmosphere around the fruit by acting as a barrier to gas exchange.
The main components used for edible coatings and films are lipids, polysaccharides, and proteins, but other materials need to be used too, such as resins, solvents, and plasticizers, in order to obtain different characteristics for the edible coatings. The flexibility and permeability of edible coatings are conferred by the use of plasticizers, tensile strength by the use of solvents, and water vapor permeability prevention is obtained with the help of resins [10][22].
Yifan et al. (2020) [23] developed self-healing coatings based on sodium alginate (SA) and l-menthol-beta-cyclodextrin-graft-chitosan for the improvement of the postharvest quality of fruits and vegetables. The developed materials presented good characteristics, showing that the addition of l-menthol led to dense, smooth, and transparent coatings with better mechanical and self-healing characteristics. Fu et al. (2021) [24] developed edible films based on waste fish scale-derived gelatin, chitosan, and CaCO3 nanoparticles. The edible films presented important characteristics such as UV absorption, antimicrobial activity, great mechanical properties, and non-toxicity. Furthermore, the developed edible films were hydrophilic, which means that they can be easily removed from fruit by washing. Fan et al. (2021) [25] developed an edible composite film (PAX) based on pectin, sodium alginate (SA), and xanthan gum (XG). The film showed important properties, such as a tensile strength which could reach a maximum value of 29.65 MPa at a concentration of 4 g/L XG, 18 g/L glycerol, and 20 g/L CaCl2. In addition, the elongation at break was 19.02% and the water vapor transmission rate was 18.12 × 10−11 g/(m2·s·pa). Active films based on chitosan and gum arabic also containing cinnamon essential oil were developed by Xu et al. (2019) [26]. The analysis performed on the developed films showed that there were electrostatic interactions between chitosan and gum arabic, forming an entangled structure. In addition, the addition of gum arabic enhanced the water barrier properties and the antioxidant effectiveness of films.
The developed edible films and coatings could also meet environmental concerns due to the fact that they are generally obtained using biocompatible, biodegradable, low-toxicity, and GRAS (Generally Recognized As Safe) materials [27].
After the production of these edible coatings, they need to be applied to the desired food products. This can be done by different methods like brushing, spraying, dipping, extrusion, a fluidized bed, panning, and solvent casting. Both the food products and the edible coatings need to be examined and tested before the best method of applying the edible coating is selected. Carbon dioxide or oxygen permeability, high or low water vapor permeability, and good mechanical resistance are only some of the characteristics that need to be assessed for the coating materials [11][28].
On commercial use, extrusion and spraying processes are desired methods for food product coatings or film formation. At a laboratory scale, coating and film formation are obtained by dipping and casting processes. Despite the existence of several methods in which the edible films can be applied, the most used ones are casting (a wet process) and extrusion (a dry process) [13].

3. Edible Films and Coatings with Functional Additives for Minimally Processed Fruit Application

The next steps in this field are strongly represented by research focused on improving the effectiveness of edible films based on a polysaccharide matrix by adding functional ingredients such as [29]:
- plasticizers (glycerol, sorbitol, sucrose, mannitol, acetylated, monoglyceride, polyethylene glycol, and xylitol) added to coatings to increase flexibility and prevent coatings from blistering, flaking, and cracking;
- emulsifiers (soy lecithin, stearic acid, and Tweens) and surfactants (Tweens) added to improve coating adhesion;
- antimicrobial agents (nisin, natamycin, phenolic compounds, natural seed extracts, and essential oils—like cinnamaldehyde, eugenol) added to improve the antimicrobial activity of a coating;
- antioxidants (ascorbic acid, citric acid, and α-tocopherol) added to coating matrices to prevent oxidative rancidity, degradation, and discoloration;
- nano-compounds (like metal oxides as ZnO or TiO2).
These functional compounds are seen now as a key component of edible films/coatings for prolonging the shelf life of fruits and vegetables and testing has already started for various fruits (guava, pear, and blueberries) and vegetables (cucumber, capsicum, and mushroom) focusing also on safety and nutritional aspects [8].
Leena et al. (2020) [30] obtained an effective delivery system using nano-structured edible coating based on zein enriched with resveratrol with the possibility of using a controlled release system. An electrospinning process was used in order to encapsulate the resveratrol (in concentrations of 2%, 5%, and 10%) in the zein nanofibers. The obtained edible coating by electrospinning of resveratrol-loaded zein nanofibers was applied on apple slices. The study showed that the coated apple slices retained better color, due to the antioxidant effect of resveratrol added as a functional ingredient, and the control of moisture loss also improved.
Arnon-Rips et al. (2021) [31] conducted a study for obtaining a new structure of edible coatings using a covalent linkage mechanism. Two functional compounds (vanillin and trans-cinnamaldehyde) were bound to chitosan (polysaccharide matrix) by Schiff base reaction and reductive amination. The functionalized structure of chitosan was analyzed and tested as an edible coating in the case of fresh-cut melon samples. The results of the study showed that the tested films produced well-adhered coatings that managed to increase the fresh-cut melon quality and shelf life without altering the sensorial attributes. In order to test the antibacterial effect, mandarin juice was added to the chitosan and vanillin and trans-cinnamaldehyde mixture, and the results showed a 6 log CFU/mL microbial count reduction, which clearly demonstrates this effect.
Fresh-cut apple samples were coated with edible coatings (carboxymethyl cellulose and Aloe Vera) and anti-browning agents in different combinations, with only one active ingredient or both. The treated samples were packed in polypropylene trays and stored at 5 ± 2 °C. Multiple parameters were studied along the storage period of the samples, such as physical properties (color, physiological loss in weight, and firmness), bio-chemical properties (ascorbic acid, total antioxidant, phenol, polyphenol oxidase, and peroxidase enzymes), and microbiological indicators. The samples coated with the edible coating material along with the anti-browning agents helped preserve the quality of the samples. As for the microbiological assay, it was observed that apple slices coated with carboxymethyl cellulose and Aloe Vera had a significantly lower microbial load. The coated apple samples showed an improved firmness compared to the untreated samples. Polyphenol oxidase and peroxidase enzyme activity were also lower in the coated samples [32].
Alginate-based edible coatings enriched with Aloe Vera were developed using the Box-Behnken design in order to optimize the minimum water vapor permeability. In order to create these films, titanium oxide nanoparticles (nTiO2) were incorporated in different percentages within the film. Mechanical and antimicrobial properties were improved after the incorporation of titanium oxide nanoparticles. Tomato samples were treated with these Aloe Vera and alginate-based edible coatings and shelf-life studies showed significant resistance to weight loss and spoilage when alginate/Aloe Vera film containing 5 wt% of nTiO2 was applied [33].
Salas-Méndez et al. (2019) [34] investigated the effects of nanolaminate coatings incorporated with extracts of Flourensia cernua on tomatoes in order to extend their shelf life. The nanolaminate coating was made from polyelectrolyte solutions of alginate and chitosan that had been treated with ethanol extracts of Flourensia cernua. The samples were coated with this material and several parameters were tested: physicochemical analyses, ethylene production, and microbial growth. The treated samples presented weight loss and microbial growth reduction. In addition, ethylene production was slower, and the tomato firmness and color were better preserved. This shows that the nanolaminate edible coatings could improve the shelf life of tomato samples.
Lara et al. (2020) [35] studied the effect of spray-coating of fresh-cut lotus roots with xanthan gum-based edible coatings. In order to have multiple variants, the study tested several variants of edible coating solutions, consisting of three concentrations of xanthan gum solutions (0.1%, 0.3%, and 0.5%). In all of the above solutions, 2% (w/w) citric acid was added as an anti-browning agent and 1% (w/w) glycerol as a plasticizer. Fresh-cut lotus roots were then sprayed with these solutions in a 5 mm thick layer for 20 s and stored at a temperature of 5 °C for 16 days in polyethylene bags. Morphology, pH, color, and microbiological determinations were performed, and it was observed that the treated samples had a significant reduction in the total color changes compared to control samples that were not sprayed. In addition, the enzymatic browning of fresh-cut lotus root during storage was decreased. A lower microbial count was recorded to the treated samples compared to non-coated fresh-cut lotus root samples in terms of Bacillus subtilis growth rate in the first 24 h of storage.
Due to the long food chain characteristics of bananas, scientists are looking for more sustainable methods for preserving them. Alali et al. (2018) [36] studied the effects of gum arabic (GA), salicylic acid (SA), and their mixture in the form of coatings on the quality of ‘Grand Nain’ bananas during postharvest storage. Nutritional compound content (total phenols, flavonoids, and vitamin C) showed a good response in the case of GA application and less favorable responses in the case of SA application. In addition, the peel browning index was better in the case of the GA coating. According to Sinha et al. (2021) [37], pear samples coated with chitosan-enriched 2.0% and 2.0 mM salicylic acid stalled the development of internal browning throughout the storage period.
Basiak et al. (2019) [38] studied the effects of coating plums with two different starch-based edible coatings, one containing only starch and the other one containing starch and whey protein. The effects of the coating materials applied on the surface of plums on water loss were determined by studying resistances in the water vapor pathway. The dynamic behavior of two starch-based coatings both at high and low potential water losses was evaluated in the experiments. The results showed that when applying the coatings in a three-layered model, the starch and starch-whey protein coatings increased the total resistance in the water vapor pathway of individual plums by 60–75% at high transpiration potentials. An increase of 11–20% was observed at lower transpiration potentials.
Arabic gum, xanthan gum with lemongrass essential oil 1% w/v, and carrageenan edible coatings were studied by Wani et al. (2021) [39]. Postharvest quality tests were made over strawberries samples treated with the three developed edible coatings, over a period of 12 days. The result showed that the coated strawberry samples had a reduction in weight loss, retained the ascorbic acid better, had better antioxidant activity, and had improved firmness. The edible films with carrageenan gum managed to retain the anthocyanins levels and phenolic compounds during the storage period. In addition, the best results in terms of maintaining quality during storage were the coatings containing carrageenan gum.
Table 1. Effect of edible coatings/films with different functional ingredients on fruits and vegetables quality.
Film/Coating Matrix
(Coating Method)
Functional Compound
(Role)
Coated Fruits or Vegetables Advantages of Coating Technology and Main Results of Study Reference
Polysaccharides and their derivatives-based matrix (starch and its derivatives, cellulose and its derivatives, alginate, pectin, chitosan, and gums)
Methyl cellulose (MC)
(Dip coating)
Palm Oil (PO)
(anti-browning agents, antioxidants, and antimicrobials)
Sapota fruits (a large berry) Decrease PO, PPO, PME activity and discoloration; Increase anti-browning effect and retention of ascorbic acid; Delay the loss of total phenolic content; Extend the shelf life by three days [40]
Methyl cellulose (MC)
(Dip coating)
Curcumin; Limonene
(antioxidants, antimicrobials)
‘Chandler’ strawberries Decrease fungal growth; Increase TPC, TA [41]
Carboxymethyl cellulose (CMC)
(Dip coating)
Aloe vera
(anti-browning agents, antioxidants, and antimicrobials)
Apple slices Decrease PO and PPO activity
Lower microbial load; Better firmness; Anti-browning effect.
[32]
Carboxymethyl cellulose (CMC)
(Coating)
Lactobacillus plantarum
(antimicrobials, probiotic)
Strawberries Reduce the growth rate of molds and yeasts on the surface of strawberries; Improve functionality (as a probiotic) [42]
Hydroxyethyl cellulose and sodium alginate
(Dip coating)
Asparagus waste extract
(antioxidants, antimicrobials)
Strawberries Maintain the TFC and TPC, delay color change and weight loss [43]
Hydroxypropyl methyl cellulose
(Spraying)
Aloe vera gel and lemon essential oil
(antioxidants, antimicrobials)
Hayward kiwis Reduce weight loss and browning, maintain higher firmness, brightness, greenness, and TSS Reduce the microbial load [44]
Chitosan solutions with a different molecular weight
(Dip coating)
Chitosan
(antimicrobials)
’Nam Dok Mai’ mango fruits Delay ripening; Increase TA, Fruit firmness, Reduction of weight loss, ethylene production, and respiration rate; Maintain the ascorbic acid and AOC (the case of chitosan with high molecular weight) [22]
Chitosan
(Dip coating)
8% and 12% blueberry (Vaccinium spp.) fruit and leaf extracts (BLE)
(antioxidants, antimicrobials)
Blueberries (Vaccinium spp.) Decrease microbial growth and decay rate; Increase the shelf life [45]
Chitosan
(Dip coating)
Acetic or Lactic acid
(antimicrobials)
Blackberry Antifungal effect over Mucor racemosus [46]
Chitosan
(Coating)
Vanillin and trans-cinnamaldehyde and mandarin extract
(antioxidants, antimicrobials)
Fresh-cut melon Reduce microbial load; Increase storage life; Maintain sensorial attributes [31]
Chitosan-pullulan
(Dip coating)
Pomegranate peel extract
(anti-browning agents, antioxidants, and antimicrobials)
Green bell pepper Decrease weight loss and color browning; Maintain firmness, TPC, TFC, AOC, and sensorial attributes [47]
Chitosan and cellulose nanofibers
(Dip coating)
Iron particles, curcumin
(antimicrobials)
Kiwifruits Reduce weight loss and firmness and reduce respiration rate [48]
Chitosan and glycerol
(Coating)
Whey protein isolate
(antioxidants, antimicrobials)
Strawberries Decrease weight loss, pH, color modifications, TA, TPC, and DPPH; Extend shelf life by 60% [49]
Chitosan, Alginate
(Coating)
Flourensia cernua ethanol extract
(antimicrobials)
Tomatoes Decrease weight loss; Decrease microbial growth and ethylene production; Maintain firmness and color [34]
Chitin, cellulose, and chitosan
(Coating)
Chitosan
(antimicrobials)
Strawberries Decrease microbial growth, decrease color changes, and weight loss [50]
Chitosan
(Coating)
Salicylic acid
(antimicrobials)
Pears Decrease PPO activity; Stalled the development of internal browning throughout the storage period [37]
Chitosan (0.05%)
(Coating)
Cinnamon essential oil (0.1%),
trans-cinnamaldehyde (0.05%)
(antimicrobials)
Cucumber Antifungal activity (Fusarium solani) [51]
Chitosan (1%)
(Coating)
Nano-silica (0.05%)
(anti-browning agents, antioxidants, antimicrobials)
  Decrease in PPO activity and browning; Reduced weight loss and TA [52]
Chitosan and
alginate
(Coating)
Pomegranate peel extract (PPE)
(anti-browning agents, antioxidants, antimicrobials)
Capsicum Decrease loss in weight, firmness, color, and ascorbic
acid content
[53]
Sodium alginate
(Dip coating)
Eugenol (Eug) and Citral (Cit)
(anti-browning agents, antioxidants, antimicrobials)
Arbutus unedo fruit (red berry) Decrease microbial growth and weight loss; Improve physicochemical and biochemical parameters: color, firmness, AOC, and sensorial attributes [54]
Sodium alginate
(Dip coating)
Essential Oil extracted from sweet orange
(antimicrobials)
Tomatoes Decrease weight loss up to 3-fold lower than uncoated samples; Decrease bacterial growth; Increase the firmness by up to 33% [55]
Sodium alginate
(Dip coating)
Citral nano-emulsions
(anti-browning agents, antioxidants, antimicrobials)
Pineapples Better color retention, low respiration rate, reduce microbial growth [56]
Sodium alginate
(Dip coating)
CaCl2
(antioxidants, antimicrobials)
Rose apple Significantly reduce the respiration rate and weight loss; Improve total phenolic content and antioxidant activity [57]
Sodium alginate, konjac glucomannan, and starch
(Dip coating)
lotus leaf extract
(antioxidants, antimicrobials)
Goji berries (Lycium barbarum L.) Reduce decay rate and weight loss; Maintain AA, TA, TSS; [58]
Modified starch from sweet potatoes
(Dip coating)
Cumin essential oil
(antimicrobials)
Pears Suppress the respiration rate and delay the weight loss and maintain flesh firmness [59]
Starch and nystose
(Dip coating)
Nystose
(antioxidants, antimicrobials)
Blackberries Positive effects in delaying the increase in pH, maintaining the firmness and anthocyanin content [60]
Arabic gum
(Dip coating)
Salicylic acid
(anti-browning agents, antioxidants)
‘Grand Nain’ bananas Decrease weight loss; Improve firmness and peel browning index; Maintain antioxidant activity [36]
Arabic gum, xanthan gum
(Coating)
Lemongrass essential oil 1% w/v and carrageenan
(antioxidants, antimicrobials)
Strawberries Decrease weight loss; Increase AA, AOC, and firmness; Maintain TANC and TPC [39]
Protein-based matrix (vegetable proteins as corn zein, wheat protein, soy protein, and animal proteins as keratin, collagen, gelatin, casein, fish myofibril protein, egg white protein, protein whey)
Gelatin (5, 6, and 7%)
(Dip coating)
Persian gum (3.5, 4, and 4.5%) and 9, 10, and 11% Shellac
(antioxidants)
Oranges Decrease of weight loss; Decrease TA; Increase TPC and AOC; Maintain fruit firmness and glossiness [61]
Gelatin
(Spraying)
Ethanolic Extract of Propolis (PEE) and zein nanocapsules
(antimicrobials)
Raspberries (Rubus idaeus L.) Antifungal activity against P. digitatum and B. cinerea strains; Increase the shelf life [62]
The nano-structured edible coating based on zein
(Controlled release coating system)
Resveratrol
(anti-browning agents, antioxidants)
Apple slices Improve color retention; Decrease moisture loss [30]
Pectin and pullulan
(Coating)
Vitis vinifera grape seed extract
(antioxidants, antimicrobials)
Peanuts Reduced lipid oxidation and antibacterial activity against E. coli and L. monocytogenes [63]
Mixed formulations or heterogeneous coatings
Aloe vera-based gel
(Dip coating)
  Papaya fruits Decrease microbial growth rate; Increase TSS, TA, AA, TCAC, TPC, and TFC; Extend the shelf life by 25%. [64]
Starch and starch-whey protein coatings
(Coating)
  Plums Increase the total resistance in the water vapor pathway [38]
PO-peroxidase; PPO-polyphenol oxidase; PME-pectin methylesterase; TA-titratable acidity; TPC-total phenolic content; TFC-total flavonoids content, TANC-total anthocyanin content; TCAC-total carotenoids content; AOC-antioxidant capacity/content; TSS-total soluble solid; AA-ascorbic acid.
 
 

4. Conclusions

Herein presents a recent investigation of newly developed coatings applied on fresh and minimally processed fruits and vegetables. The latest developments in this field are represented by the extensive use of chitosan or alginate as the main component of the edible coatings to which different functional ingredients are added, like EOs, nano-forms, antioxidants extracts, and probiotics. The role of these functional ingredients is not limited to the basic function of the protective layer, which assures extending shelf life but also provides functional properties, such as antioxidant capacity, probiotic properties, better sensory attributes, and higher vitamin C content, having a positive impact on consumers. A better understanding of the mechanism of the edible functional coatings and their promotion among consumers could help to extend their application in fruit and vegetable preservation. Moreover, edible coatings and film can become a very promising method that could be applied for delivering bioactive compounds in order to increase bioavailability. Despite the various and clear research in this field and due to very specific coating technology applied for different fruit and/or vegetables, with different proposed aims (starting from improving shelf life to preserving a high nutritional value or increasing certain nutritional features of the products) the subject is of permanent topicality and experiments are absolutely necessary starting from the known data.

References

  1. Stan, A.; Bujor, O.-C.; Haida, G.; Badulescu, L.; Asanica, A. Monitoring the quality parameters for organic raspberries in order to determine the optimal storage method by packaging. Acta Hortic. 2019, 1277, 461–468.
  2. Stan, A.; Butac, M.; Ion, V.A.; Cătuneanu, I.; Frîncu, M.; Bădulescu, L. Post-harvest technologies influences in organic ‘Tita’ plums quality. Sci. Papers Ser. B. Hortic. 2020, LXIV, 105–112.
  3. Verma, T.; Byron, D.; Chaves, B.D.; Irmak, S.; Subbiah, J. Pasteurization of dried basil leaves using radio frequency heating: A microbial challenge study and quality analysis. Food Control 2021, 124, 107932.
  4. Chitrakar, B.; Zhang, M.; Bhandari, B. Improvement strategies of food supply chain through novel food processing technologies during COVID-19 pandemic. Food Control 2021, 125, 108010.
  5. Rabadán, A. Consumer Attitudes towards Technological Innovation in a Traditional Food Product: The Case of Wine. Foods 2021, 10, 1363.
  6. Stefanoiu, G.A.; Popa, E.E.; Mitelut, A.C.; Popa, M.E. Marketing research regarding consumer perceptions on using radio frequency in bakery production. Sci. Bull. Ser. F. Biotechnol. 2018, XXII, 119–124.
  7. Hassan, B.; Chatha, S.A.S.; Hussain, A.I.; Zia, K.M.; Akhtar, N. Recent advances on polysaccharides, lipids and protein based edible films and coatings: A review. Int. J. Biol. Macromol. 2018, 109, 1095–1107.
  8. Nair, M.S.; Tomar, M.; Punia, S.; Kukula-Koch, W.; Kumar, M. Enhancing the functionality of chitosan- and alginate-based active edible coatings/films for the preservation of fruits and vegetables: A review. Int. J. Biol. Macromol. 2020, 164, 304–320.
  9. Dehghani, S.; Hosseini, S.V.; Regenstein, J.M. Edible films and coatings in seafood preservation: A review. Food Chem. 2018, 240, 505–513.
  10. Ulusoy, B.H.; Yildirim, F.K.; Hecer, C. Edible films and coatings: A good idea from past to future technology. J. Food Technol. Res. 2018, 5, 28–33.
  11. Tural, S.; Sarıcaoğlu, F.T.; Turhan, S. Edible film and coatings: Production, application methods, functions and uses in muscular foods. Acad. Food 2017, 15, 84–94.
  12. Mamtani, K. Edible Packaging Market by Material (Lipids, Polysaccharides, Proteins, Surfactants, and Composite Films), and End Users (Food & Beverages and Pharmaceuticals)-Global Opportunity Analysis and Industry Forecast, 2017–2023. Available online: https://www.alliedmarketresearch.com/edible-packaging-market (accessed on 5 September 2021).
  13. Suhag, R.; Kumar, N.; Petkoska, A.T.; Upadhyay, A. Film formation and deposition methods of edible coating on food products: A review. Food Res. Int. 2020, 136, 109582.
  14. Vital, A.C.P.; Guerrero, A.; Kempinski, E.M.B.; de Oliveira Monteschio, J.; Sary, C.; Ramos, T.R.; del Mar Campo, M.; do Prado, I.N. Consumer profile and acceptability of cooked beef steaks with edible and active coating containing oregano and rosemary essential oils. Meat Sci. 2018, 143, 153–158.
  15. Siegrist, M.; Hartmann, C. Consumer acceptance of novel food technologies. Nat. Food 2020, 1, 343–350.
  16. Peters, R.J.B.; Bouwmeester, H.; Gottardo, S.; Amenta, V.; Arena, M.; Brandhoff, P.; Marvin, H.J.P.; Mech, A.; Moniz, F.B.; Pesudo, L.Q.; et al. Nanomaterials for products and application in agriculture, feed and food. Trends Food Sci. Technol. 2016, 54, 155–164.
  17. MacRitchie, L.A.; Hunter, C.J.; Strachan, N.J.C. Consumer acceptability of interventions to reduce Campylobacter in the poultry food chain. Food Control 2014, 35, 260–266.
  18. Wan, V.C.-H.; Lee, C.M.; Lee, S.-Y. Understanding consumer attitudes on edible films and coatings: Focus group findings. J. Sens. Stud. 2007, 22, 353–366.
  19. Deliza, R.; Rosenthal, A.; Silva, A.L.S. Consumer attitude towards information on non-conventional technology. Trends Food Sci. Technol. 2003, 14, 43–49.
  20. Baldwin, E.A.; Hagenmaier, R.; Bai, J. Edible Coatings and Films to Improve Food Quality; CRC Press: Boca Raton, FL, USA, 2011; p. 460.
  21. Jongsri, P.; Wangsomboondee, T.; Rojsitthisak, P.; Seraypheap, K. Effect of molecular weights of chitosan coating on postharvest quality and physicochemical characteristics of mango fruit. LWT-Food Sci. Technol. 2016, 73, 28–36.
  22. Galus, S. Development of Edible Coatings in the Preservation of Fruits and Vegetables. In Polymers for Agri-Food Applications; Gutierrez, T., Ed.; Springer: Cham, Switzerland, 2019; pp. 377–390.
  23. Yifan, Y.; Jioyu, R.; Chenxi, L.; Renqiang, Y.; Liqin, G. Fabrication of l-menthol contained edible self-healing coating based on guest-host interaction. Colloids Surf. A Physicochem. Eng. Asp. 2020, 597, 124743.
  24. Fu, B.; Mei, S.; Su, X.; Chen, H.; Zhu, J.; Zheng, Z.; Lin, H.; Dai, C.; Luque, R.; Yang, D.P. Integrating waste fish scale-derived gelatin and chitosan into edible nanocomposite film for perishable fruits. Int. J. Biol. Macromol. 2021, 191, 1164–1174.
  25. Fan, Y.; Yang, J.; Duan, A.; Li, X. Pectin/sodium alginate/xanthan gum edible composite films as the fresh-cut package. Int. J. Biol. Macromol. 2021, 181, 1003–1009.
  26. Xu, T.; Gao, C.C.; Feng, X.; Yang, Y.; Shen, X.; Tang, X. Structure, physical and antioxidant properties of chitosan-gum arabic edible films incorporated with cinnamon essential oil. Macromolecules 2019, 134, 230–236.
  27. De Oliveira, K.A.R.; Fernandez, K.F.D.; de Souza, E.L. Current Advances on the Development and Application of Probiotic-Loaded Edible Films and Coatings for the Bioprotection of Fresh and Minimally Processed Fruits and vegetables. Foods 2021, 10, 2207.
  28. Dhanapal, A.; Sasikala, P.; Rajamani, L.; Kavitha, V.; Yazhini, G.; Banu, M.S. Edible films from polysaccharides. Food Sci. Qual. Manag. 2012, 3, 1–10.
  29. Riva, S.C.; Opara, U.O.; Fawole, O.A. Recent developments on postharvest application of edible coatings on stone fruit: A review. Sci. Hortic. 2020, 262, 109074.
  30. Leena, M.M.; Yoha, K.S.; Moses, J.A.; Anandharamakrishnan, C. Edible coating with resveratrol loaded electrospin zein nanofibers with enhanced bioaccessibility. Food Biosci. 2020, 36, 100669.
  31. Arnon-Rips, H.; Cohen, Y.; Saidi, L.; Porat, R.; Poverenov, E. Covalent linkage of bioactive volatiles to a polysaccharide support as a potential approach for preparing active edible coatings and delivery systems for food products. Food Chem. 2021, 338, 127822.
  32. Kumar, P.; Sethi, S.; Sharma, R.R.; Singh, S.; Varghese, E. Improving the shelf life of fresh-cut ‘Royal Delicious’ apple with edible coatings and anti-browning agents. J. Food Sci. Technol. 2018, 55, 3767–3778.
  33. Salama, E.H.; Aziz, M.S. Optimized alginate and Aloe vera gel edible coating reinforced with nTiO2 for the shelf life extension of tomatoes. Int. J. Biol. Macromol. 2020, 165, 2693–2701.
  34. Salas-Méndez, E.D.J.; Vicente, A.; Pinheiro, A.C.; Ballesteros, L.F.; Silva, P.; Rodríguez-García, R.; Hernández-Castillo, F.D.; Díaz-Jiménez, M.L.V.; Flores-López, M.L.; Villarreal-Quintanilla, J.A.; et al. Application of edible nanolaminate coatings with antimicrobial extract of Flourensia cernua to extend the shelf life of tomato (Solanum lycopersicum L.) fruit. Postharvest Biol. Technol. 2019, 150, 19–27.
  35. Lara, G.; Yakoubi, S.; Villacorta, C.M.; Uemura, K.; Kobayashi, I.; Takahashi, C.; Nakajima, M.; Neves, M.A. Spray technology applications of xanthan gum-based edible coatings for fresh-cut lotus root (Nelumbo nucifera). Food Res. Int. 2020, 137, 109723.
  36. Alali, A.A.; Awad, M.A.; Al-Qurashi, A.D.; Mohamed, S.A. Postharvest gum Arabic and salicylic acid dipping affect quality and biochemical changes of ‘Grand Nain’ bananas during shelf life. Sci. Hortic. 2018, 237, 51–58.
  37. Sinha, A.; Gill, P.P.S.; Jawandha, S.K.; Kaur, P.; Grewal, S.K. Chitosan-enriched salicylic acid coatings preserves antioxidant properties and alleviates internal browning of pear fruit under cold storage and supermarket conditions. Postharvest Biol. Technol. 2021, 182, 111721.
  38. Basiak, E.; Linke, M.; Debeaufort, F.; Lenart, A.; Geyer, M. Dynamic behaviour of starch-based coatings on fruit surfaces. Postharvest Biol. Technol. 2019, 147, 166–173.
  39. Wani, S.M.; Gull, A.; Ahad, T.; Malik, A.R.; Ganaie, T.A.; Masoodi, F.A.; Gani, A. Effect of gum Arabic, xanthan and carrageenan coatings containing antimicrobial agent on postharvest quality of strawberry: Assessing the physicochemical, enzyme activity and bioactive properties. Int. J. Biol. Macromol. 2021, 183, 2100–2108.
  40. Vishwasrao, C.; Ananthanarayan, L. Delayed post-harvest ripening-associated changes in Manilkara zapota L. var. Kalipatti with composite edible coating. J. Sci. Food Agric. 2017, 97, 536–542.
  41. Dhital, R.; Joshi, P.; Mora, N.B.; Umagiliyage, A.; Chai, T.; Kohli, P.; Choudhary, R. Integrity of edible nano-coatings and its effects on quality of strawberries subjected to simulated in-transit vibrations. Food Sci. Technol. 2017, 80, 257–264.
  42. Khodaei, D.; Hamidi-Esfahani, Z. Influence of bioactive edible coatings loaded with Lactobacillus plantarum on physicochemical properties of fresh strawberries. Postharvest Biol. Technol. 2019, 156, 110944.
  43. Liu, C.; Jin, T.; Liu, W.; Hao, W.; Yan, L.; Zheng, L. Effects of hydroxyethyl cellulose and sodium alginate edible coating containing asparagus waste extract on postharvest quality of strawberry fruit. LWT-Food Sci. Technol. 2021, 148, 111770.
  44. Passafiume, R.; Gaglio, R.; Sortino, G.; Farina, V. Effect of three different aloe vera gel-based edible coatings on the quality of fresh-cut “Hayward” kiwifruits. Foods 2020, 9, 939.
  45. Yang, G.; Yue, J.; Gong, X.; Qian, B.; Wang, H.; Deng, Y.; Zhao, T. Blueberry leaf extracts incorporated chitosan coatings for preserving postharvest quality of fresh blueberries. Postharvest Biol. Technol. 2014, 92, 46–53.
  46. Vilaplana, R.; Guerrero, K.; Guevara, J.; Valencia-Chamorro, S. Chitosan coatings to control soft mold on fresh blackberries (Rubus glaucus Benth.) during postharvest period. Sci. Hortic. 2020, 262, 109049.
  47. Kumar, N.; Ojha, A.; Upadhyay, A.; Singh, R.; Kumar, S. Effect of active chitosan-pullulan composite edible coating enrich with pomegranate peel extract on the storage quality of green bell pepper. LWT-Food Sci. Technol. 2020, 138, 110435.
  48. Ghosh, T.; Nakano, K.; Katiyar, V. Curcumin doped functionalized cellulose nanofibers based edible chitosan coating on kiwifruits. Int. J. Biol. Macromol. 2021, 184, 936–945.
  49. Muley, A.B.; Singhal, R.S. Extension of postharvest shelf life of strawberries (Fragaria ananassa) using a coating of chitosan-whey protein isolate conjugate. Food Chem. 2020, 329, 127213.
  50. Sun, X.; Wu, Q.; Picha, D.H.; Ferguson, M.H.; Ndukwe, I.E.; Azadi, P. Comparative performance of bio-based coatings formulated with cellulose, chitin, and chitosan nanomaterials suitable for fruit preservation. Carbohydr. Polym. 2021, 259, 117764.
  51. Isturiz-Zapata, M.A.; Hernandez-Lopez, M.; Correa-Pacheco, Z.N.; Barrera-Necha, L.L. Quality of cold-stored cucumber as affected by nanostructured coatings of chitosan with cinnamon essential oil and cinnamaldehyde. LWT Food Sci. Technol. 2020, 123, 109089.
  52. Kou, X.; He, Y.; Li, Y.; Chen, X.; Feng, Y.; Xue, Z. Effect of abscisic acid (ABA) and chitosan/nano-silica/sodium alginate composite film on the color development and quality of postharvest Chinese winter jujube (Zizyphus jujuba Mill. cv. Dongzao). Food Chem. 2019, 270, 385–394.
  53. Nair, M.S.; Saxena, A.; Kaur, C. Characterization and antifungal activity of pomegranate peel extract and its use in polysaccharide-based edible coatings to extend the shelf life of capsicum (Capsicum annuum L.). Food Bioprocess Technol. 2018, 11, 1317–1327.
  54. Guerreiro, A.C.; Gago, C.M.L.; Faleiro, M.L.; Miguel, M.G.C.; Antunes, M.D.C. The effect of alginate-based edible coatings enriched with essential oils constituents on Arbutus unedo L. fresh fruit storage. Postharvest Biol. Technol. 2015, 100, 226–233.
  55. Das, S.; Vishakha, K.; Banerjee, S.; Mondal, S.; Ganguli, A. Sodium alginate-based edible coating containing nanoemulsion of Citrus sinensis essential oil eradicates planktonic and sessile cells of food-borne pathogens and increased quality attributes of tomatoes. Int. J. Biol. Macromol. 2020, 162, 1770–1779.
  56. Prakash, A.; Baskaran, R.; Vadivel, V. Citral nanoemulsion incorporated edible coating to extend the shelf life of fresh-cut pineapples. LWT-Food Sci. Technol. 2020, 118, 108851.
  57. Duong, N.T.C.; Uthairatanakij, A.; Laohakunjit, N.; Jitareerat, P.; Kaisangsri, N. An innovative single step of cross-linked alginate-based edible coating for maintaining postharvest quality and reducing chilling injury in rose apple cv. ‘Tabtimchan’ (Syzygium samarangenese). Sci. Hortic. 2022, 292, 110648.
  58. Jing-Fan, X.; Zhang, B.; Yan, H.; Tao Feng, J.; Qing Ma, Z.; Zhang, X. Effect of lotus leaf extract incorporated composite coating on the postharvest quality of fresh goji (Lycium barbarum L.) fruit. Postharvest Biol. Technol. 2019, 148, 132–140.
  59. Oyom, W.; Xu, H.; Liu, Z.; Long, H.; Li, Y.; Zhang, Z.; Bi, Y.; Tahergorabi, R.; Prusky, D. Effects of modified sweet potato starch edible coating incorporated with cumin essential oil on storage quality of ‘early crisp’. LWT 2022, 153, 112475.
  60. Bersaneti, G.T.; Prudencio, S.H.; Mali, S.; Celligoi, M.A.P.C. Assessment of a new edible film biodegradable based on starch-nystose to increase quality and the shelf life of blackberries. Food Biosci. 2021, 42, 101173.
  61. Khorram, F.; Ramezanian, A.; Hosseini, S.M.H. Shellac, gelatin and Persian gum as alternative coating for orange fruit. Sci. Hortic. 2017, 225, 22–28.
  62. Alejandra Moreno, M.A.; Vallejo, A.M.; Ballester, A.R.; Zampini, C.; Isla, M.I.; López-Rubio, A.; Fabra, M.J. Antifungal edible coatings containing Argentinian propolis extract and their application in raspberries. Food Hydrocoll. 2020, 107, 105973.
  63. Priyadarshi, R.; Riahi, Z.; Rhim, J.-W. Antioxidant pectin/pullulan edible coating incorporated with Vitis vinifera grape seed extract for extending the shelf life of peanuts. Postharvest Biol. Technol. 2022, 183, 111740.
  64. Mendy, T.K.; Misran, A.; Mahmud, T.M.M.; Ismail, S.I. Application of Aloe vera coating delays ripening and extend the shelf life of papaya fruit. Sci. Hortic. 2019, 246, 769–776.
More
Information
Contributor MDPI registered users' name will be linked to their SciProfiles pages. To register with us, please refer to https://encyclopedia.pub/register :
View Times: 2.1K
Revision: 1 time (View History)
Update Date: 06 Jan 2022
1000/1000
ScholarVision Creations