| Literature DB >> 35621485 |
Jianbo Zhao1, Dongmei Liang1, Weiguo Li1, Xiaoguang Yan1, Jianjun Qiao1, Qinggele Caiyin1.
Abstract
The production and large-scale application of traditional chemical pesticides will bring environmental pollution and food safety problems. With the advantages of high safety and environmental friendliness, botanical biopesticides are in line with the development trend of modern agriculture and have gradually become the mainstream of modern pesticide development. However, the traditional production of botanical biopesticides has long been faced with prominent problems, such as limited source and supply, complicated production processes, and excessive consumption of resources. In recent years, the rapid development of synthetic biology will break through these bottlenecks, and many botanical biopesticides are produced using synthetic biology, such as emodin, celangulin, etc. This paper reviews the latest progress and application prospect of synthetic biology in the development of botanical pesticides so as to provide new ideas for the analysis of synthetic pathways and heterologous and efficient production of botanical biopesticides and accelerate the research process of synthetic biology of natural products.Entities:
Keywords: botanical biopesticides; celangulin; emodin; synthetic biology
Year: 2022 PMID: 35621485 PMCID: PMC9137473 DOI: 10.3390/bioengineering9050207
Source DB: PubMed Journal: Bioengineering (Basel) ISSN: 2306-5354
Botanical pesticides used worldwide in 2022.
| Area | Capacity (Insecticide—Pyrethroids) (Tonnes) | Capacity (Insecticide—Botanical Products and Biologicals) (Tonnes) | Capacity (Seed Treat Fung—Botanical |
|---|---|---|---|
| Japan | 156 | / | / |
| Armenia | 15 | 1 | / |
| Austria | 20 | 6 | / |
| Belgium | 14 | 3 | / |
| China, Hong Kong | 1 | 2 | / |
| Croatia | 10 | 0 | / |
| Cyprus | 6 | 3 | / |
| French Polynesia | 1 | 1 | / |
| Germany | 113 | 25 | / |
| Iceland | 0 | 0 | 0 |
| Italy | 174 | 60 | / |
| Lithuania | 21 | / | / |
| Madagascar | 47 | 1 | 0 |
| Malaysia | 648 | 101 | 0 |
| Maldives | 64 | 14 | / |
| Myanmar | 195 | 36 | / |
| New Caledonia | 1 | 0 | / |
| Panama | 12 | 0 | / |
| Paraguay | 975 | 50 | 0 |
| Poland | 98 | 26 | 0 |
| Saint Kitts and Nevis | 1 | 0 | / |
| Saudi Arabia | 4732 | 2631 | 0 |
| Slovakia | 19 | 3 | 0 |
| Slovenia | 1 | 0 | / |
| Sudan | 224 | 0 | 0 |
| Suriname | 44 | 2 | / |
| Switzerland | 3 | 6 | / |
| Togo | 270 | 12 | / |
| Ukraine | 271 | 0 | / |
| UK | 28 | 10 | 0 |
Data Source: Food and Agriculture Organization of the United Nations, FAO, https://www.fao.org/faostat/en/#data/RP (accessed on 10 December 2021).
Registration information of botanical pesticides in China.
| Varieties | Purpose | Category | Formulation (Including TC)/Main Formulation | Registration Number |
|---|---|---|---|---|
|
| Insecticide | alkaloid | 2/aqueous solutions, AS | 8 |
|
| Bactericide | alkaloid | 5/aqueous solutions, AS | 122 |
|
| Insecticide | alkaloid | 5/aqueous solutions, AS | 8 |
|
| Insecticide | alkaloid | 2/aqueous solutions, AS | 8 |
|
| Insecticide | Terpenoids | 1/soluble concentrate, SL | 26 |
|
| Insecticide | Terpenoids | 6/emulsifiable concentrate, EC | 7 |
|
| Rodenticide | Terpenoids | 3/emulsion in water, EW | 2 |
|
| Rodenticide | Terpenoids | 2/Granules | 2 |
|
| Insecticide | Terpenoids | 2/Bait, RB | 2 |
|
| Insecticide | Terpenoids | 2 | |
|
| Bactericide | Terpenoids | 2/soluble concentrate, SL | 7 |
| Luowei | Insecticide | Terpenoids | 3/aqueous solutions, AS | 2 |
|
| Insecticide | Terpenoid saponins | 2/dust powder, DP | 1 |
|
| Bactericide | Organic sulfur | 1/aqueous solutions, AS | 36 |
|
| Insecticide | Esters | 2/microemulsion, ME | 27 |
|
| Bactericide | Phenols | 5/emulsion in water, EW | 9 |
|
| Bactericide | Coumarins | 2/soluble concentrate, SL | 21 |
|
| Bactericide | Anthraquinones | 6/emulsion in water, EW | 6 |
|
| Insecticide | Flavonoids | 4/aqueous solutions, AS | 2 |
|
| Bactericide | Flavonoids | 2/emulsion in water, EW | 2 |
|
| Insecticide | Isoflavones | 2/microemulsion, ME | 23 |
Data Source: Ministry of Agriculture and Rural Affairs of the People’s Republic of China, China Pesticides Information Network, http://www.chinapesticide.org.cn/hysj/index.jhtml (accessed on 18 February 2022).
Synthetic biotechniques in the biosynthesis of botanical biopesticides.
| Item | Purpose | Technique | Application |
|---|---|---|---|
| Recombinant DNA Technique | Gene testing and analysis; Site-directed mutagenesis | PCR | Eg. Limonene biosynthesis: synthetic gene screening [ |
| Gibson assembly | |||
| Modular Metabolic Engineering | Optimize metabolic pathways | Modular metabolic engineering | Eg. Pyrethrin biosynthesis: Reconstructed the chrysanthemic acid biosynthetic pathway in tomato fruit [ |
| Genome Editing | Edit Genes | Zinc-finger nuclease, ZFN | Eg. Pyrethrin biosynthesis: overexpressed the gene encoding the synthase of pyrethroid acid ligands in Chrysanthemum morifolium [ |
| Transcription activator-like effector nuclease, TALEN | |||
| Clustered regulatory interspaced short palindromic repeat, CRISPR | |||
| multiplex automated genome engineering, MAGE/conjugative assembly genome engineering, CAGE |