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پاسخ فعالیت میکروبی خاک به بنومیل و تتراسایکلین در حضور اسید هیومیک

نوع مقاله : مقالات پژوهشی

نویسندگان

1 دانشجوی دکتری، گروه علوم خاک، دانشکده کشاورزی ،دانشگاه فردوسی مشهد

2 گروه علوم خاک، دانشکده کشاورزی، دانشگاه فردوسی مشهد، ایران

3 گروه علوم دامی، دانشکده کشاورزی دانشگاه فردوسی مشهد، ایران

10.22067/jsw.2026.98132.1535
چکیده
بنومیل و تتراسایکلین به‌عنوان ترکیبات زیست فعال می‌توانند فعالیت میکروبی و آنزیمی خاک را تحت تأثیر قرار دهند. بنومیل به عنوان یک نهاده کشاورزی و تتراسایکلین عمدتا از طریق کود دامی، وارد خاک می‌شوند. در این مطالعه، اثرات منفرد و ترکیبی این دو ترکیب در حضور و عدم حضور اسید هیومیک بر فعالیت میکروبی خاک در سه زمان انکوباسیون (1، 7 و 30 روز) بررسی شد. غلظت‌های مورد استفاده شامل بنومیل 12 mg kg⁻¹، تتراسایکلین 50 mg kg⁻¹ و اسید هیومیک 500 mg kg⁻¹ بود. شاخص‌های زیستی انداز گیری شده شامل تنفس برانگیخته میکروبی، کربن زیست‌توده میکروبی و فعالیت آنزیم‌های دهیدروژناز و فسفومونو استراز اسیدی و قلیایی بودند. نتایج نشان داد که بنومیل و تتراسایکلین به‌ویژه در تیمار ترکیبی بنومیل و تتراسایکلین، فعالیت میکروبی و آنزیمی خاک را کاهش داده و اثر مهاری آن‌ها در روزهای اولیه شدت بیشتری داشت. بیشترین اثر مهاری بنومیل در روز 1 و در فعالیت آنزیم فسفومونواستراز قلیایی با 56 درصد کاهش و در تتراسایکلین در روز 7 و در شاخص تنفس برانگیخته میکروبی با 37 درصد کاهش نسبت به کنترل مشاهده شد. حضور اسید هیومیک اثرات مهاری بنومیل و تتراسایکلین را تعدیل کرد، به گونه‌ای که کاهش شاخص‌های زیستی اندازه‌گیری شده در تیمارهای حاوی اسید هیومیک نسبت به تیمار فاقد آن کمتر بود. یکی از بارزترین اثرات تعدیل کننده اسید هیومیک در فعالیت آنزیم دهیدروژناز مشاهده شد، به طوری که تقریبا در اکثر تیمارها در هر سه زمان انکوباسیون تیمار حاوی اسید هیومیک از تیمار مشابه بدون اسید هیومیک فعالیت آنزیم دهیدروژناز به طور معنی داری بیشتر بود. این مطالعه نشان داد که پاسخ زیستی خاک به ترکیبات زیست فعال، حاصل برهم‌کنش نوع آلاینده، مدت زمان تماس و حضور ماده آلی است و اسید هیومیک می‌تواند در تعدیل اثرات منفی این ترکیبات و افزایش تاب‌آوری زیستی نقش موثری داشته باشد.

کلیدواژه‌ها

موضوعات

عنوان مقاله English

Response of Microbial Activity in Soil to Benomyl and Tetracycline in the Presence of Humic Acid

نویسندگان English

sakineh balandeh 1
AMIR LAKZIAN 2
ALI JAVADMANESH 3
1 PhD student, Department of Soil Sciences, Agriculture Ferdowsi University of Mashhad
2 Department of Soil Sciences, Agriculture Ferdowsi University of Mashhad IRAN
3 Department of Animal Sciences, Agriculture Ferdowsi University of Mashhad IRAN
چکیده English

Introduction

The increasing use of fungicides and antibiotics in agricultural systems has raised concerns regarding their unintended effects on soil biological processes. Benomyl, a benzimidazole fungicide, and tetracycline, a broad-spectrum antibiotic, are frequently introduced into soil through plant protection practices and the application of animal manures. Once in soil, these compounds may alter microbial growth, metabolic activity, and enzyme-mediated nutrient cycling, thereby affecting essential soil functions.

Soil microorganisms are central to soil fertility and ecosystem functioning, and parameters such as microbial respiration, microbial biomass, and enzyme activities are widely used as sensitive indicators of soil disturbance. The simultaneous presence of fungicides and antibiotics may result in interactive effects that differ from those observed for individual compounds, potentially intensifying or prolonging biological stress.

Soil organic matter, particularly humic substances, plays a critical role in regulating the fate and bioavailability of organic contaminants. Humic acid can reduce the toxicity of pesticides and antibiotics through adsorption and complexation, while simultaneously improving physicochemical conditions that support microbial activity. Despite this, information on the combined effects of benomyl and tetracycline on soil microbial activity in the presence of humic acid, and their temporal dynamics, remains limited.

The objective of this study was therefore to assess the individual and combined effects of benomyl and tetracycline on soil microbial respiration, enzyme activities, and microbial biomass carbon, with particular emphasis on the moderating role of humic acid and time-dependent microbial responses.

Materials and Methods

A laboratory incubation experiment was conducted using a soil classified as Typic Haplocambids. The experiment followed a completely randomized design with eight treatments: control (C), benomyl (F), tetracycline (T), benomyl + tetracycline (FT), humic acid (H), benomyl + humic acid (FH), tetracycline + humic acid (TH), and benomyl + tetracycline + humic acid (FTH).

Benomyl and tetracycline were applied at rates of 12 and 50 mg kg⁻¹ soil, respectively, and humic acid was added at 500 mg kg⁻¹ soil. Soil moisture content was adjusted to 60% of water-holding capacity, and samples were incubated at 25 °C for 30 days. Destructive sampling was performed after 1, 7, and 30 days of incubation.

Microbial activity was assessed using substrate-induced respiration with glucose and cellulose as carbon substrates. Microbial biomass carbon (MBC) was determined using the fumigation–extraction method. Enzyme activities, including dehydrogenase, acid phosphomonoesterase (ACP), and alkaline phosphomonoesterase (ALP), were measured using standard colorimetric assays. Data were analyzed by analysis of variance (ANOVA), and treatment means were compared using Tukey’s test at a significance level of P < 0.01.

Results and Discussion

Application of benomyl and tetracycline significantly affected soil microbial activity, with the strongest inhibitory effects observed under their combined application (FT). Substrate-induced respiration with glucose was reduced in soils treated with benomyl and tetracycline during the early incubation period, while the FT treatment consistently exhibited the lowest CO₂ production across all sampling times, indicating a pronounced suppressive effect on microbial metabolic activity.

Respiration responses to cellulose were lower than those observed for glucose, suggesting greater resistance of complex carbon decomposition processes to chemical disturbance. Nevertheless, cellulose-induced respiration was persistently reduced in the FT treatment throughout the incubation period, reflecting impaired hydrolytic capacity of the microbial community.

Microbial biomass carbon declined markedly in treatments without humic acid, particularly in the FT treatment, on day 1 of incubation. Although partial recovery of MBC was observed by day 30, biomass levels in the FT treatment remained significantly lower than in the control, indicating incomplete microbial adaptation.

Dehydrogenase activity exhibited a transient increase in some benomyl-treated soils, especially in the presence of humic acid (FH), followed by a gradual decline over time. This pattern reflects an initial stress-induced stimulation followed by metabolic inhibition. In contrast, humic acid–amended soils generally maintained higher and more stable dehydrogenase activity throughout the incubation period.

Alkaline phosphatase activity showed an inducible response, particularly in the FH and TH treatments during the early stages of incubation, likely reflecting increased phosphorus demand under chemical stress. Acid phosphatase activity responded more variably depending on treatment and incubation time. In soils amended with humic acid, temporal fluctuations in enzyme activities were reduced, indicating enhanced functional stability; however, the inhibitory effect of tetracycline remained evident in the TH treatment.

Conclusion

Benomyl and tetracycline, particularly when applied simultaneously, exerted inhibitory effects on soil microbial respiration, biomass, and enzyme activities. The presence of humic acid mitigated these negative effects by enhancing microbial stability and reducing biological stress over time. Although partial microbial adaptation occurred during the incubation period, the combined fungicide–antibiotic treatment caused persistent disturbances in soil microbial functioning. Overall, humic acid contributes to improved biological stability of soil exposed to bioactive contaminants and represents a potential management strategy for mitigating chemical stress.

کلیدواژه‌ها English

Enzyme activity
Substrate-induced respiration
Dehydrogenase
Phosphomonoesterase
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