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نقش باکتریهای نفتخوار موثر در اصلاح خاکهای آلوده نفتی (مطالعه موردی: جنس باسیلوس)
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نویسنده
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زینالی کمیل ,شریعتی شایان ,پوربابایی احمد علی
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منبع
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زيست شناسي خاك - 1403 - دوره : 12 - شماره : 1 - صفحه:105 -139
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چکیده
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هیدروکربنهای نفتی برای همه اشکال حیات سمی هستند. بنابراین آلودگی زیستمحیطی ناشی از نفت بسیار نگرانکننده است. نتایج پژوهشهای مختلف در زمینه پالایش اکوسیستمهای آلوده، نشان داده است که مکانیسم اصلی حذف این ترکیبات سمی از مکانهای آلوده از طریق تجزیه زیستی توسط باکتریهای موثر در زیستپالایی اتفاق میافتد. جنسهای مختلف باکتریایی مانند pseudomonas، acinetobacter، bacillus، rhodococcus، flavobacterium، enterobacter و nocardia بهعنوان تجزیهکنندگان ترکیبات نفتی شناخته شده اند. این باکتریها با عملکرد سیستم آنزیمی خود و ترشح ترکیبات مختلف مثل سورفکتانتهای زیستی، از طریق مسیرها و مکانیسمهای مختلف، هیدروکربنها را تخریب کرده و خاک را پاکسازی میکنند. جنس باسیلوس یکی از باکتریهای موثر نفتخوار میباشد که میتواند در شرایط محیطی استرسزا زنده مانده و از هیدروکربنهای نفتی به عنوان منابع کربن و انرژی برای رشد استفاده کند. گونههای باسیلوس دارای مجموعهای از تواناییهای فیزیولوژیکی هستند که به آنها اجازه میدهد در طیف وسیعی از زیستگاهها مانند ماسههای بیابانی، چشمههای آب گرم و خاکهای قطب شمال زندگی کنند. همچنین باسیلوسها توانایی ترشح سورفکتانتهای زیستی مختلف مثل سورفکتین، ایتورین و فنگیسین را تا میزان 5/5 گرم بر لیتر دارند که در محدودههای گسترده ph، دما و شوری پایدار هستند. این جنس قادر به ترشح آنزیمهای تجزیهکننده قدرتمندی مثل لیپاز، دیاکسیژناز و هیدروکسیلاز است. پژوهشهای صورت گرفته در ایران و جوامع علمی بینالمللی نشان میدهد این باکتری توانایی تجزیه ترکیبات مختلف نفتی را تا میزان 99% در مدت 10 تا 30 روز در محیط مایع دارد. همچنین در خاک، این باکتری توانایی تجزیه هیدروکربنهای نفتی را به میزان 20 تا 80% در مدت 15 تا 180 روز دارا میباشد. بنابراین میتوان در رویکردهای زیستپالایی مکانهای آلوده به نفت خام از باسیلوسهای غیر بیماریزا به عنوان یک باکتری قدرتمند در تجزیه ترکیبات نفتی، برای دستیابی به محیط زیستی پایدار استفاده کرد.
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کلیدواژه
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آلودگی خاک، باسیلوس، سورفکتانت زیستی، زیستپالایی، لیپاز، هیدروکربن نفتی
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آدرس
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دانشگاه تهران, گروه علوم و مهندسی خاک, ایران, دانشگاه تهران, دانشکده محیط زیست, گروه مهندسی محیط زیست, ایران, دانشگاه تهران, گروه علوم و مهندسی خاک, ایران
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پست الکترونیکی
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pourbabaei@ut.ac.ir
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the role of effective oil-eating bacteria in the remediation of oil-contaminated soils (case study: bacillus genus)
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Authors
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zeynali komeil ,shariati shayan ,pourbabaee ahmad ali
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Abstract
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background and objectivescrude oil consists of aliphatic, aromatic, and heterocyclic compounds, all of which are toxic to life forms. therefore, oil pollution is a significant environmental concern. due to widespread use, accidental spills, transportation, and refining processes, crude oil contamination is relatively common worldwide. methods for remediating oil-contaminated soils include biological, chemical, and physical approaches. while chemical and physical methods have many disadvantages, bioremediation is a promising and effective approach for treating oil-contaminated soils. bioremediation is the natural ability of microorganisms and their enzyme systems to degrade, break down, and convert hydrocarbons into less toxic substances. this method is considered the least harmful and most cost-effective way to clean the environment. different microbial genera are known to degrade hydrocarbons. among these, bacillus stands out as a gram-positive, rod-shaped bacterium capable of producing spores in aerobic environments. belonging to the class bacilli and the family bacillaceae, bacillus can form endospores under stressful environmental conditions, allowing them to remain dormant for long periods. this unique characteristic makes bacillus particularly advantageous for bioremediation in oil-contaminated environments. the current review article focuses on the recognition and potential of biodegradation of petroleum compounds by oil-eating bacteria, especially the genus bacillus. it is hoped that this review will enhance our understanding of oil pollution's impact on biological communities and microbial remediation of oil-contaminated soilsmaterials and methodsall the articles used in this review were prepared from online sources (google, google scholar, sid, cas, science direct, wiley online library, etc.), and from the publishers elsevier, wiley online library, frontiers, springer, ehp, taylor and francis online, mdpi, acs publication, nature, civilica, etc.). this article is based on 169 jcr international journals and scientific journals. this review article briefly includes sections 1-the effect of crude oil on soil microorganisms, 2-oil pollution in iran, 3-the importance of bioremediation of petroleum compounds, 4-mechanisms of remediation of oil-contaminated soils, 5-aerobic and anaerobic degradation pathways of n-alkanes, 6-researches conducted in the field of bioremediation of petroleum hydrocarbons in iran, 7-characteristics of bacillus in oil degradation, and 8-bioremediation of oil-contaminated soils in iran with the approach of using bacillus.resultsvarious bacterial genera, such as achromobacter, acinetobacter, alcaligenes, arthrobacter, actinomycetes, pseudomonas, enterobacter, micrococcus, staphylococcus, mycobacterium, rhodococcus, vibrio, sphingomonas, lactobacillus, and serratia, are known to degrade hydrocarbons. these bacteria destroy hydrocarbons and purify the soil through the function of their enzyme system and secretion of various compounds such as biosurfactants through various pathways and mechanisms. there are two main mechanisms for the breakdown of hydrocarbons: aerobic and anaerobic pathways. in aerobic mechanisms, oxygen is used as the electron acceptor, while in anaerobic conditions, sulfate and nitrite receive the electrons and complete the process. bacillus species are typically mesophilic, thriving at temperatures between 30-45°c. some thermophilic species can grow at higher temperatures, up to 65°c. spore formation in bacillus involves asymmetric cell division, producing an endospore and a mother cell, which enables the bacterium to survive harsh conditions. bacillus species can utilize hydrocarbons as carbon and energy sources, making them commonly found in oil-polluted soils. several bacillus species, including b. polymyxa, b. cereus, b. subtilis, b. badius, b. licheniformis, b. cibi, b. megaterium, and b. stearothermophilus, have demonstrated the ability to degrade petroleum hydrocarbons. these bacteria can tolerate a wide range of environmental conditions, such as varying ph, temperature, and salt concentrations, which few organisms can endure. they are highly resistant to environmental stressors like nutrient scarcity, dryness, radiation, hydrogen peroxide, and chemical disinfectants. the production of endospores also provides a distinct advantage for hydrocarbon biodegradation. furthermore, bacillus species produce a variety of biosurfactants, particularly lipopeptides, which enhance the solubility and bioavailability of hydrocarbons, thereby increasing bioremediation efficiency. since biosurfactants are biodegradable and have low environmental toxicity, producing these powerful, stable compounds using low-cost carbon sources could significantly advance bioremediation of oil-contaminated soils. bacillus also produces key degradative enzymes, such as lipase, hydroxylase, dioxygenase, monooxygenase p450, and protease, which play crucial roles in breaking down petroleum compounds. it has been reported that species like b. subtilis, b. pumilus, b. licheniformis, and b. megaterium can degrade alkanes, btex, and pahs by secreting these enzymes. the hydrocarbon groups in oil can combine with soil phosphorus, leading to phosphorus depletion. since phosphorus limitation is a key constraint in bioremediation of oil-contaminated soils, phosphorus-solubilizing bacillus species such as b. subtilis, b. cereus, b. thuringiensis, b. pumilus, and b. megaterium, which secrete organic acids like gluconic, lactic, acetic, succinic, and propionic acids, can alleviate this problem. research conducted in iran and the international scientific community shows that this bacterium is capable of degrading various oil compounds by up to 99% within 10 to 30 days in liquid media. additionally, in soil, bacillus can degrade petroleum hydrocarbons by 20% to 80% over a period of 15 to 180 days. conclusionin conclusion, various bacterial genera, particularly bacillus species, play a critical role in the degradation of hydrocarbons through aerobic and anaerobic pathways. bacillus, known for its resilience to environmental stressors and ability to form endospores, is highly effective in bioremediation, especially in oil-contaminated soils. these bacteria produce essential enzymes and biosurfactants, such as surfactin, which significantly enhance the breakdown of petroleum hydrocarbons. moreover, phosphorus-solubilizing bacillus species help address nutrient limitations in contaminated environments, further boosting their potential in environmental clean-up. their remarkable efficiency, with degradation rates of up to 80% in soil, underscores their importance in global sustainable bioremediation initiatives
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Keywords
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bacillus ,bioremediation ,biosurfactant ,lipase ,petroleum hydrocarbon ,soil pollution
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