




































 Agricultural Science; Vol. 2, No. 1; 2020 
ISSN 2690-5396   E-ISSN 2690-4799 

https://doi.org/10.30560/as.v2n1p109 

109                             Published by IDEAS SPREAD 
 

Enzyme Activity Variability and Comparison in Soils under Medicinal 
versus Crop Plants of Anguo City, China 

Wenke Liu1 
1 Institute of Environment and Sustainable Development in Agriculture, Chinese Academy of Agricultural 
Sciences, Key Lab of Energy Conservation and Waste Management of Agricultural Structures, Ministry of 
Agriculture, Beijing, China  
Correspondence: Wenke Liu, Institute of Environment and Sustainable Development in Agriculture, Chinese 
Academy of Agricultural Sciences, Key Lab of Energy Conservation and Waste Management of Agricultural 
Structures, Ministry of Agriculture, Beijing, China. E-mail: liuwke@163.com 
 
Received: March 25, 2020   Accepted: April 6, 2020   Online Published: April 16, 2020 
 
Abstract 
Long-term continuous cultivation of different plant species in a similar agroecosystem intensively may result in 
divergent variability in soil fertility, particularly soil biochemical properties. In this study, an investigation was 
conducted to clarify the variability of five soil enzyme activities (urease, protease, catalase, polyphenol oxidase 
and alkaline phosphatase) of croplands under medicinal plants (herbal fields) and food crops (crop fields) in Anguo 
city, a traditional cultivation base for Chinese medicinal plants in China. The results showed that five soil enzyme 
activities were similar between herbal and crop fields. However, soil urease and alkaline phosphatase activities of 
herbal and crop fields decreased significantly with soil depth (0-60 cm), while protease, catalase, polyphenol 
oxidase activities were similar in all soil layers for two kinds of fields. There were largely variation scenes at linear 
correlation analysis between soil physicochemical traits and enzymatic activities under medicinal plant versus crop 
fileds although extensively significant correlations were presented. In conclusion, soil enzyme activities were 
similar in two type of farmlands, and soil urease and alkaline phosphatase activities decreased with soil depth for 
both fields. Inconsistent linear correlations between soil physicochemical traits and enzymatic activities under 
medicinal plant versus crop fields were presented, so soil enzymatic activity variation was subjected to soil 
physicochemical traits dominated by agronomic managements designed for specific plant species. 
Keywords: enzyme activity, herbal field, crop field, soil fertility, soil depth 
1. Introduction 
Soil enzymes are potential indicators of soil fertility because they did show us the status of soil biology and soil 
nutrient cycling in agroecosystems (Dick 1994; Dick et al.1996). They also indicate soil biochemical 
characteristics to understand the status and evolution of soil fertility and monitor the effects of soil management 
on long-term productivity (Doran and Parkin 1994; Zeng et al.2008). Nitrogen (N) and phosphorus (P) are essential 
macronutrients, in form of inorganic compounds and organic matter in soil. In soil, transformation and cycle of 
soil organic N and P are mainly catalyzed and driven by urease, protease and phosphatase. Soil urease and protease 
promote soil hydrolytic processes of urea and protein materials into inorganic N, respectively (Guan 1986). 
Phosphatase controls the mineralization of soil esters of P to produce inorganic phosphate (Speir and Ross 1978). 
In addition, there still some important soil enzymes involved in soil redox processes. Plant roots and microflora 
are sources of soil enzymes, dominating soil enzyme activities and the soil biology and biochemistry.  
Soil enzyme activity responds rapidly to changes in soil management, and is affected by long-term agronomical 
management practices (Dick et al. 1996, Dick 1994), soil type, cropping system and so on. Anna (1999) had 
showed that soil enzyme activities were generally higher in continuous grass fields than cultivated fields, and 
added organic amendments increased soil enzyme activities in cultivated systems. Masciandaro (2004) showed 
that compost application increased agronomic yield due to release of nutrients for plant nutrition and soil 
metabolism. Also, long-term application of organic fertilizer was more conducive to conserve the soil biochemical 
characters and environment quality (Wang et al. 2007). Under long-term fertilization conditions, organic manure 
plus chemical fertilizers increased soil enzyme activities significantly, and the effect of fertilization on black soil 
was higher than dark brown soil (Jiao et al. 2011). Compared with soybean and maize rotation or intercropping, 
continuous cropping soybeans and maize reduced soil urease activity (Dai et al. 2013). Up to date, many factors 



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that affect soil enzyme activity in different agroecosystems had been revealed, however, the difference of soil 
enzyme activity in the same area under different crop species has not been reported. 
Anguo city locates in Taihang piedmont plain, belonging to Hebei province, China. Anguo city is famous for 
Chinese medicinal plant cultivation lasting more than 400 years. Nowadays, cropland and herbal land coexists 
together, and the percent of medicinal plant cultivation area exceeds 35% of the total arable land. In Anguo city, 
the distribution of herbal fields and crop fields is concentrated, cross and adjacent over many years. Currently, 
about 300 herbal plant species were cultivated on ten thousand hectares (Chu et al. 2010). So, it is meaningful to 
investigate soil fertility evolution for guiding agronomy management to realize the sustainable development of 
medicinal plants cultivation in Anguo city. However, previous reports were focused on status quo of soil nutrients 
(Li et al. 2011; Du et al. 2013), heavy metals (Chu et al. 2010) and mycorrhizal fungi (Zhao et al. 2010) issues of 
herb soil. No study has been carried out to investigate soil enzymatic activity of herb fields, meanwhile making a 
comparison with cropland field. Our earlier work found that soil nitrate and available P of medicinal crop fields 
were higher than neighboring crop fields, while soil pH of cropland were higher than medicinal crop fields in 
Anguo city (Du et al. 2013). Whereas, there is no information about soil enzyme activities and their differences of 
the fields growing medicinal crops and food crops in Anguo city. Within this context, the objectives of the study 
are a) to evaluate the spatial distribution characteristics of the five enzyme activities along three vertical soil layers 
in herbal fields and crop fields, and b) to compare the differences of five soil enzyme activities between herbal 
fields and crop fields. 
2. Materials and Methods 
2.1 Field Selection and Soil Sampling 
The investigation was carried out during 19-21 May, 2012 in Anguo city. In order to evaluate enzyme (urease, 
protease, catalase(CAT), polyphenol oxidase(PPO) and alkaline phosphatase(ALP)) activity variability along 0-
60 cm soil depth of herbal fields and their neighboring crop fields in Anguo city, forty herbal fields and twenty 
neighboring crop fields was selected in ten villages of four townships for soil sampling. Each sampling area is 
lesser and each field is about 0.01 ha, so the sampling number was chosen three. The three representative locations 
were selected in each field where soil sampling was conducted at three soil layers, i.e., 0-20, 20-40 and 40-60 cm 
soil depths. Soil samples from each location at same soil layer in one field were thoroughly mixed to obtain the 
representative samples. The sampling fields were growing twenty-one species of medicinal plants and two food 
crops including wheat and peanuts. Detail information about sampling fields and the crop species planted in the 
sampling fields are listed in Du et al. (2013). 
2.2 Determination Methods 
Soil samples were air-dried and passed through 2 mm sieve to test five enzyme activities including urease, protease, 
CAT, PPO and ALP. The enzyme activities were determined according to the methods described by Tabatabai and 
Bremner (1969) and Guan (1986). Soil urease activity was determined by phenol-sodium hypochlorite colorimetric 
method and was expressed as mg ammonia generated by per gram dry soil. Soil protease activity was measured 
using ninhydrin-colorimetric and was expressed as mg glycine equivalents per gram soil. ALP activity was 
determined using ammonium chloride-ammonium hydroxide (pH 9.8) as the buffer solution and disodium phenyl 
phosphate (0.5%, w·v-1) as the substrate and was expressed as mg of phenol equivalents per gram dry soil. Soil 
CAT activity was measured by titration method and was expressed as the amount of potassium permanganate 
solution (0.1 mol·L-1) that was consumed per gram dry soil. Soil PPO activity was measured by iodometric titration 
and was expressed by the amount of standard iodine (0.005 mol·L-1）that was used to titrate equivalent 1g soil for 
filtrate. 
2.3 Data Analysis 
Data processing and analysis were made with Excel 2007 and SAS 8.2; t-test was used to examine the difference 
between soil enzyme activities of various depths, and herbal fields and crop fields.  
3. Results 
3.1 Soil Enzyme Activities in Herbal and Crop Fields 
As shown in Table 1, there were significant differences between soil urease and ALP activities in herbal fields 
between three soil layers, and their activities decreased with increment in soil depth remarkably. Urease and ALP 
activities in 0-20, 20-40 and 40-60 cm soil layers were 0.78-6.60, 0.48-5.22, and 0.26-2.66 mg·g-1, and 0.10-0.26, 
0.06-0.18, and 0.05-0.13 mg·g-1, respectively. Urease and ALP activities of upper soil layers (0-20 cm or 40-60cm) 
were significantly higher than those of lower soil layers. Soil protease activities along with the increase of soil 



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depth gradually reduce and the CAT and PPO activities increased with increasing soil depth, but there was no 
statistically significant difference of soil protease, CAT, PPO activities between three soil layers of herbal fields. 
The same as herbal fields, there were significant differences between soil urease and ALP activities in crop fields 
between three soil layers, and they decreased with increment in soil depth remarkably (Table 1). Urease and ALP 
activities in 0-20, 20-40 and 40-60cm soil layers were 1.36-4.93, 0.77-3.50, and 0.39-2.68 mg·g-1, and 0.11-0.24, 
0.07-0.13, and 0.05-0.12 mg·g-1, respectively. Urease and ALP activities of upper soil layers (0-20 cm or 40-60cm) 
were significantly higher than those of lower soil layers except ALP activities between soil layers of 20-40cm 
versus 40-60cm. Protease, CAT and PPO activities had the similar change trend, namely the enzyme activities of 
the surface layer (0-20cm) were highest, the bottom layer(20-40cm) were center ,and the middle layer (20-
40cm)were slightly low, but there was no statistically significant difference of soil protease, CAT, PPO activities 
between three soil layers of crop fields.  
 
Table 1. Soil urease, protease, CAT, PPO, and ALP activities at the three soil layers of herbal fields and crop fields 

Soil enzymatic 
indices 

Soil layers 
(cm) 

Herbal fields 
mean ±SD 

Crop fields 
mean±SD 

Urease（mg·g-1） 
0-20 2.94±1.37** 3.01±3.01** 
20-40 1.82±0.90** 1.65±0.86** 
40-60 1.07±0.59** 1.00±0.62** 

Protease（mg·g-1） 
0-20 14.29±9.21 15.96±8.74 
20-40 11.35±6.79 11.33±6.36 
40-60 10.76±5.90 11.45±9.31 

CAT （ml·g-1） 
0-20 1.85±0.50 1.85±0.51 
20-40 1.89±0.60 1.74±0.47 
40-60 1.92±0.67 1.78±0.52 

PPO（ml·g-1） 
0-20 2.23±0.54 2.39±0.56 
20-40 2.29±0.48 2.37±0.63 
40-60 2.38±0.62 2.42±0.85 

ALP（mg·g-1） 
0-20 0.15±0.03** 0.15±0.03** 
20-40 0.10±0.02** 0.10±0.02** 
40-60 0.09±0.02** 0.09±0.02 

Notes: * and ** indicate significant difference for the enzymatic activity among three soil layers at P<0.05 and 
P<0.01, respectively.  
 
3.2 Comparison of Soils Enzyme Activities of Herbal and Crop Fields 
As shown in Table 2, soil urease activities of 0-20cm soil layers in herbal fields were slightly below the 
crop fields, and the enzyme activities of 20-40cm and 40-60cm were opposite. Protease activities in 0-
20cm and 40-60cm soil layers of herbal fields were slightly below the crop fields in the same layers, 
and on the contrary of 20-40cm soil layers. CAT activities in 0-20cm soil layers of herbal and crop fields 
were same, and the activities of 20-40cm and 40-60cm soil layers in herbal fields showed larger values 
than crop fields. PPO activities of three soil layers in herbal fields were slightly lower than crop fields 
of corresponding soil layers. Soil ALP activities of three soil layers in herbal and crop fields were similar. 
But the difference between herbal and crop fields at the three soil layers was not significant due to large 
variability. 
 
Table 2. Comparison of soil enzyme activities between herbal fields and crop fields 

Soil enzymatic indices Field types 
Soil depth (cm) 
0-20 20-40 40-60 

Urease（mg·g-1） 
Herbal field 2.94 1.82 1.07 
Crop field 3.01 1.65 1.00 

Protease（mg·g-1） Herbal field 14.29 11.35 10.76 



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Crop field 15.96 11.33 11.45 

CAT（ml·g-1） 
Herbal field 1.85 1.89 1.92 
Crop field 1.85 1.74 1.78 

PPO（ml·g-1） 
Herbal field 2.23 2.29 2.38 
Crop field 2.39 2.37 2.42 

ALP（mg·g-1） 
Herbal field 0.15 0.10 0.09 
Crop field 0.15 0.10 0.09 

 
3.3 Correlation of Soil Enzyme Activities with Soil Physicochemical Properties in Herbal and Crop Fields 
According to the preliminary analysis of soil physical and chemical properties, carried out on soil enzyme activities 
and soil physical & chemical properties in herbal and crop fields. The correlation coefficients were listed in Table 
3. The table3 showed that soil urease activities of herbal fields were positively correlated with soil organic matter 
(SOM) and pH value, and the correlation of soil urease activities and alkali-hydrolysable nitrogen (A-H-N), 
available phosphorus (avail.-P), nitrate, water content were negative. Protease activities were positively correlated 
with A-H-N, avail.-P and water content, and negatively correlated with pH and Ec. ALP activity and avail.-P, 
nitrate, water content were positively correlated, negatively related to pH.CAT activities were positively correlated 
with A-H-N, nitrate, water content, and the correlation between CAT activities and SOM was power exponent, the 
formula was y1=0.3653x10.2153.The correlation of CAT activities and avail.-P was quadratic polynomial, the 
formula was y2=-4.763x22+14.34x2+12.065.There were no correlation between PPO activities and all soil 
physical properties. Soil urease activities in crop fields were negatively correlated with A-H-N and water content. 
Soil protease activities were positively related to avail.-P and nitrate, and were negatively related to A-H-N. ALP 
activities and avail.-P were positively related, and the correlation of ALP activities and water content was quadratic 
polynomial, the formula was y3 = 4.2382 x32- 0.9677x3 + 0.1921.CAT activities were positively correlated with 
A-H-N and water content. PPO activities were positively correlated with avail.-P and nitrate content, and the 
correlation of soil pH, EC , water content and SOM were quadratic polynomial, the formulas were y4=0.3334x42-
1.5323x4+8.543, y5=33.987x52-148.76x5+278.72, and y6=0.0242x62-0.1148x6+0.2676, y7=-
0.099x72+0.5571x7-0.1974, respectively. In the above seven formulas, y1,y2,y3,y4,y5,y6 and y7 represented 
SOM and avail.-P in herbal fields, avail.-P, pH, EC, water content and SOM, respectively. The x1and x2 
represented CAT activities in herbal fields, x3 represented ALP activities in crop fields, x4,x5,x6,x7 represented 
CAT activities in crop fields. 
 
Table 3. Correlative coefficients between soil enzyme activities and soil physicochemical properties of herbal 
fields and crop fields 

Soil physicochemical 
properties 

Soil enzyme activities of herbal fields 
(n=120) Soil enzyme activities of crop fields (n=60) 

urease protease ALP CAT PPO urease protease ALP CAT PPO 

O.M. content 0.29** 0.04 0.07 0.18* 0.03 0.02 0.18 0.20 0.01 0.32**

AHN content 0.32** 0.43** 0.14 0.27** 0.12 0.33** 0.30* 0.18 0.32** 0.07 

Avail.-P content 0.33** 0.27** 0.57** 0.18* 0.09 0.001 0.43** 0.43** 0.10 0.28* 

Nitrate content 0.24** 0.03 0.19** 0.19* 0.02 0.07 0.45** 0.09 0.14 0.27* 

pH 0.18** 0.41** 0.18** 0.11 0.22 0.04 0.15 0.11 0.002 0.37**

EC 0.07 0.17* 0.02 0.0007 0.03 0.08 0.10 0.004 0.10 0.51**

Water content 0.34** 0.12 0.23** 0.31** 0.02 0.41** 0.08 0.25** 0.56** 0.44**

Note: * and ** indicate significant difference of the correlation between soil enzyme activities and soil 
physicochemical properties of herbal fields and crop fields at P<0.05 and P<0.01, respectively.  



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4. Discussion 
The current results showed that soil urease and ALP activities decreased with soil depth both in herbal and crop 
fields. Taylor (2002) found that in sandy soils enzymatic activities decreased with depth, and positive correlations 
were found between enzyme activities and SOM content. Franken and Dick (1983) showed that ALP activities 
were significantly related to microbial respiration, while urease activities were not significantly correlated to 
microbial respiration, ALP activities were highly correlated with microbial biomass. Lan (2011) found that urease 
activities were positively related to soil organic carbon, nitrogen and avail-P. This is consistent with previous 
studies. In the preliminary study, Du et al. (2013) showed that soil nutrients and electrical conductivity (EC) of 
fields under medicinal plants decreased with soil depth. Agricultural activities are concentrated in the surface 
layer(0-20cm), and the oxygen content and fertilizers were concentrated in 0-20cm soil layers, so the number of 
rhizosphere microbial was large and more frequent activity, and increased with soil enzyme activities accordingly. 
With increasing soil depth, soil microbial quantity and SOM content decreased gradually, ultimately led to soil 
enzyme activities decreasing. 
There was no significant difference in five soil enzyme activities between herbal fields and crop fields in various 
soil layers. The previous results showed that soil nutrients (nitrate, avail.-P contents), and soil chemical properties 
(EC and pH) differed largely between herbal fields and crop fields. However, no difference was found with respect 
to SOM and soil water content (Du et al. 2013). We suggest that the similar of SOM and microbial species due to 
long-time distribution caused no difference between enzyme activities under two kinds of utilization ways. 
Both in herbal and crop fields, ALP activities were increased with the content of avail.-P. Soil ureas activities of 
herbal fields were increased with SOM content, however, in crop fields soil urease activities were not significant 
relative with SOM content. Fan (2002) showed that soil urease activities increased with soil organic carbon, and 
ALP activities closely related to the content of avail.-P. Their findings can be supported by our results. Annual 
organic additions generally stimulated the size of microbial biomass carbon and enzyme activity and may be more 
efficient in maintaining long-term soil productivity with repeated applications or in combination with inorganic 
fertilizers (Lalande 1998). 
5. Conclusions 
This study presents some novel findings on soil enzyme activity differences between herbal fields and crop fields 
under the long-term cultivation practices in Anguo city, China. First, soil enzyme activities were similar in the two 
type lands cultivated herbal plants and food crops, respectively. Secondly, the urease and ALP activities were 
sensitive to soil depth both for herbal and crop fields, though the variability of other three enzyme activities in soil 
depth was not significant. Moreover, soil enzymatic activity variation may subject to many soil physicochemical 
traits developed during cultivation of medicinal plants and crops during the long-term production. 
Acknowledgements 
I want to thank Jiaojiao Zhao, a master student, for her soil sampling and soil pretreatment.  
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    /NLD (Gebruik deze instellingen om Adobe PDF-documenten te maken die zijn geoptimaliseerd voor prepress-afdrukken van hoge kwaliteit. De gemaakte PDF-documenten kunnen worden geopend met Acrobat en Adobe Reader 5.0 en hoger.)
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    /UKR <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>
    /ENU (Use these settings to create Adobe PDF documents best suited for high-quality prepress printing.  Created PDF documents can be opened with Acrobat and Adobe Reader 5.0 and later.)
  >>
  /Namespace [
    (Adobe)
    (Common)
    (1.0)
  ]
  /OtherNamespaces [
    <<
      /AsReaderSpreads false
      /CropImagesToFrames true
      /ErrorControl /WarnAndContinue
      /FlattenerIgnoreSpreadOverrides false
      /IncludeGuidesGrids false
      /IncludeNonPrinting false
      /IncludeSlug false
      /Namespace [
        (Adobe)
        (InDesign)
        (4.0)
      ]
      /OmitPlacedBitmaps false
      /OmitPlacedEPS false
      /OmitPlacedPDF false
      /SimulateOverprint /Legacy
    >>
    <<
      /AddBleedMarks false
      /AddColorBars false
      /AddCropMarks false
      /AddPageInfo false
      /AddRegMarks false
      /ConvertColors /ConvertToCMYK
      /DestinationProfileName ()
      /DestinationProfileSelector /DocumentCMYK
      /Downsample16BitImages true
      /FlattenerPreset <<
        /PresetSelector /MediumResolution
      >>
      /FormElements false
      /GenerateStructure false
      /IncludeBookmarks false
      /IncludeHyperlinks false
      /IncludeInteractive false
      /IncludeLayers false
      /IncludeProfiles false
      /MultimediaHandling /UseObjectSettings
      /Namespace [
        (Adobe)
        (CreativeSuite)
        (2.0)
      ]
      /PDFXOutputIntentProfileSelector /DocumentCMYK
      /PreserveEditing true
      /UntaggedCMYKHandling /LeaveUntagged
      /UntaggedRGBHandling /UseDocumentProfile
      /UseDocumentBleed false
    >>
  ]
>> setdistillerparams
<<
  /HWResolution [2400 2400]
  /PageSize [612.000 792.000]
>> setpagedevice

