Scientia Agricultura Sinica ›› 2026, Vol. 59 ›› Issue (15): 3424-3439.doi: 10.3864/j.issn.0578-1752.2026.15.014

• FOOD SCIENCE AND ENGINEERING • Previous Articles     Next Articles

Effects of Controlled Atmosphere and 1-MCP Treatment on Quality of Yuhuangli Plum During Refrigeration

LU XiaoFeng1(), HAO ShuoJie2(), WANG Yang1, GAO Na2, TONG Wei1, TIAN RuiDong2, SUN HaiLong1(), LIU Shuo3()   

  1. 1 Research Institute of Pomology, Chinese Academy of Agricultural Sciences/Key Laboratory of Horticultural Crops Germplasm Resources Utilization, Ministry of Agriculture, Xingcheng 125100, Liaoning
    2 Miyun District Bureau of Landscape and Forestry, Beijing 101500
    3 3Liaoning Institute of Pomology, Yingkou 115009, Liaoning
  • Received:2026-01-06 Accepted:2026-03-17 Online:2026-08-01 Published:2026-08-03
  • Contact: SUN HaiLong, LIU Shuo

Abstract:

【Objective】This study aimed to investigate the effects of 1-methylcyclopropene (1-MCP) and controlled atmosphere (CA) storage on the preservation and internal quality of YuHuangli plums, to identify the optimal storage strategies, so as to provide the theoretical and technical references for industrial-scale storage.【Method】YuHuangli plums were subjected to four storage treatments: 1.0 µL·L-1 1-MCP, CA storage with 3% O2 + 1% CO2, CA storage with 3% O2 + 5% CO2, and normal cold storage as a control (CK). Fruit samples were analyzed at 0, 30, 60, and 90 days of storage. External and internal quality indices—including peel color, texture, sugar-acid composition, respiration intensity, and aroma-were measured using a colorimeter, texture analyzer, gas chromatograph, high-performance liquid chromatograph, and gas chromatography-mass spectrometer.【Result】Compared with CK, both 1-MCP and CA treatments delayed the decline in fruit firmness and titratable acidity, maintained higher levels of soluble solids, vitamin C, and polyphenols, reduced respiration rates, and slowed the reduction of cohesiveness, springiness, gumminess, chewiness, rupture force, rupture deformation, yield force, and yield deformation, thus better preserving fruit texture. Both treatments also partially inhibited the degradation of sugar-acid components, with acidity being better maintained after 60 days. Peel color parameters (L*, a*, b*, and C*) declined during storage, with the fastest decrease under CK, followed by 3% O2 + 5% CO2, then 3% O2 + 1% CO2, and the slowest under 1-MCP treatment, significantly suppressing browning and darkening (P<0.05). After 60 days, 1-MCP exhibited the most pronounced preservation effect, followed by 3% O2 + 1% CO2 and 3% O2 + 5% CO2, while CK showed the greatest quality deterioration. At this stage, the flavor profile of YuHuangli plum was dominated by aldehydes, alcohols, and esters, with trans-2-hexenal and hexanal accounting for about 84% of the total relative content. Over time, the relative content of aldehydes and alcohols decreased in the 1-MCP and CA groups, whereas esters increased.【Conclusion】Both 1-MCP (1.0 µL·L-1) and CA storage (3% O2 + 1% CO2) effectively preserved the quality of ‘YuHuangli’ plums during cold storage. Among them, 1-MCP provided the most comprehensive maintenance of overall fruit quality—including texture, color, and flavor—with the optimal preservation observed after 60 days.

Key words: YuHuangli plum, 1-MCP, controlled atmosphere storage, refrigeration, fruit quality, flavor profile

Table 1

Comparison of fruit texture in different treatments"

贮藏天数
Storage
time (d)
处理
Treatment
内聚性
Cohesiveness
(Ratio)
弹性
Elasticity
(mm)
胶黏性
Gumminess
(N)
咀嚼性
Chewiness
(mj)
破裂力
Rupture force
(N)
破裂位移
Rupture displacement (mm)
0 CK 0.662±0.005a 1.538±0.015a 5.488±0.251a 8.441±0.448a 0.920±0.037a 4.701±0.167abc
30 CK 0.647±0.004de 1.485±0.031abc 5.164±0.311ab 7.844±0.571cde 0.879±0.043bc 4.564±0.041cd
1-MCP 0.653±0.004bcd 1.463±0.026ab 5.032±0.557cde 7.704±0.981ab 0.919±0.036ab 4.742±0.067a
3% O2+1% CO2 0.655±0.004bc 1.469±0.020abc 4.971±0.301cde 7.596±0.486bc 0.902±0.039ab 4.659±0.084abc
3% O2+5% CO2 0.651±0.005bcde 1.475±0.027ab 5.092±0.257cd 7.796±0.482bc 0.900±0.040ab 4.585±0.083bcd
60 CK 0.621±0.004h 1.493±0.015de 4.577±0.210fg 6.824±0.332f 0.812±0.044def 4.338±0.295e
1-MCP 0.645±0.003ef 1.469±0.033abc 4.869±0.396cdef 7.401±0.768cd 0.852±0.040cd 4.691±0.078abc
3% O2+1% CO2 0.639±0.004fg 1.476±0.016bcd 4.794±0.328defg 7.249±0.544def 0.836±0.042de 4.677±0.050abc
3% O2+5% CO2 0.634±0.004g 1.486±0.023cd 4.743±0.27efg 7.133±0.480f 0.826±0.038de 4.553±0.043cd
90 CK 0.594±0.004j 1.538±0.015f 3.495±0.239i 5.113±0.372h 0.700±0.049g 4.248±0.026e
1-MCP 0.638±0.004fg 1.472±0.028cd 4.752±0.347efg 7.152±0.600ef 0.829±0.045de 4.681±0.187abc
3% O2+1% CO2 0.618±0.007h 1.478±0.030de 4.539±0.360g 6.768±0.676f 0.809±0.048ef 4.501±0.083d
3% O2+5% CO2 0.604±0.015i 1.515±0.021ef 4.025±0.242h 5.957±0.374g 0.781±0.024f 4.358±0.254e
贮藏天数
Storage
time (d)
处理
Treatment
破裂功
Rupture work
(N.mm)
屈服力
Yield force
(N)
屈服位移
Yield displacement
(mm)
屈服功
Yield work
(N.mm)
果肉硬度
Flesh firmness
(N)
0 CK 2.645±0.133a 0.678±0.024a 2.651±0.173a 1.074±0.081a 0.223±0.009a
30 CK 2.362±0.130cde 0.549±0.034fg 2.529±0.171abc 0.892±0.098cd 0.175±0.011efg
1-MCP 2.533±0.114ab 0.676±0.025a 2.618±0.142ab 1.027±0.072ab 0.213±0.010b
3% O2+1% CO2 2.476±0.113bc 0.639±0.024bc 2.52±0.087abc 0.970±0.058b 0.199±0.009c
3% O2+5% CO2 2.431±0.124bcd 0.557±0.024f 2.504±0.033bcd 0.897±0.046c 0.185±0.008d
60 CK 2.248±0.177ef 0.503±0.028h 2.229±0.215f 0.762±0.090ef 0.166±0.010gh
1-MCP 2.431±0.131bcd 0.672±0.025a 2.504±0.122bcd 0.895±0.070c 0.197±0.010c
3% O2+1% CO2 2.369±0.128cde 0.606±0.027de 2.466±0.080cd 0.876±0.065cd 0.176±0.010def
3% O2+5% CO2 2.291±0.099ef 0.531±0.023g 2.419±0.098cd 0.822±0.053de 0.169±0.010fgh
90 CK 2.026±0.186g 0.484±0.030h 2.162±0.157f 0.74±0.082f 0.154±0.011i
1-MCP 2.361±0.164cde 0.625±0.029cd 2.427±0.141cd 0.874±0.095cd 0.183±0.009de
3% O2+1% CO2 2.305±0.147def 0.599±0.036e 2.372±0.168de 0.790±0.035e 0.169±0.013fgh
3% O2+5% CO2 2.176±0.108f 0.529±0.017g 2.264±0.166ef 0.781±0.054f 0.163±0.007h

Fig. 1

Changes in appearance of Yuhuangli plum under different storage conditions"

Table 2

Effect of different treatments on color difference parameters of yuhuan plum fruit peel"

贮藏天数 Storage time (d) 处理 Treatment L* a* b* c*
0 CK 64.46±2.15ab 5.03±5.05a 47.26±4.61a 47.55±4.50a
30 CK 62.47±1.50bc 2.35±4.34abc 46.28±3.88ab 46.49±4.00a
1-MCP 63.75±1.74abc 3.92±4.24a 47.23±3.45a 47.51±3.29a
3% O2+1% CO2 63.69±2.17abc 3.08±4.04ab 47.18±3.62a 47.36±3.54a
3% O2+5% CO2 62.83±1.94abc 2.78±4.59ab 46.62±4.01ab 46.95±3.92a
60 CK 58.61±3.69d 1.12±4.23abc 44.86±2.94ab 45.07±3.15a
1-MCP 62.02±1.71c 1.90±3.64abc 46.23±2.18ab 46.44±2.12a
3% O2+1% CO2 61.72±1.72c 1.82±4.07abc 45.82±3.07ab 46.05±3.12a
3% O2+5% CO2 59.45±3.09d 1.39±4.92abc 45.80±4.55ab 46.02±4.41a
90 CK 43.28±2.23h -2.24±5.94c 39.67±2.44d 34.25±2.34c
1-MCP 55.65±1.99e -1.01±4.98bc 44.23±3.15abc 41.50±2.64b
3% O2+1% CO2 52.17±1.48f -1.26±5.05bc 43.52±2.98bc 39.98±2.25b
3% O2+5% CO2 49.56±2.14g -1.59±5.05bc 41.23±2.66cd 36.94±3.59c

Fig. 2

Effects of different storage conditions on the internal quality of Yuhuangli plum Different lowercase letters indicate significant difference (P<0.05). The same as below"

Table 3

Soluble sugar, organic acids and total phenolic content of Yuhuangli plum under different storage treatments"

贮藏天数
Storage
time (d)
处理
Treatment
可溶性糖 Soluble sugar (g/100 g) 有机酸 Organic acids(mg/100 g) 总酚
Total
phenolic
(mg/100 g)
蔗糖
Sucrose
山梨糖醇
Sorbitol
果糖
Fructose
葡萄糖
Glucose
柠檬酸
Citric acid
莽草酸
Shikimic acid
琥珀酸
Succinic acid
富马酸
Fumaric acid
苹果酸
Malic acid
奎尼酸
Quinic acid
0 CK 4.434 0.568 0.852 0.094 28.415 10.742 0.677 1019.914 921.926 28.415 66.513
30 CK 0.755 0.456 0.684 0.075 22.808 5.887 0.548 786.301 391.273 22.808 57.020
1-MCP 1.467 0.521 0.781 0.086 26.036 7.858 0.610 989.232 790.206 26.036 65.001
3% O2+1% CO2 0.784 0.518 0.776 0.085 25.877 7.496 0.576 878.837 524.209 25.877 64.693
3% O2+5% CO2 0.768 0.503 0.754 0.083 25.131 7.110 0.556 836.620 496.701 25.131 62.827
60 CK 0.707 0.354 0.531 0.058 17.707 5.125 0.459 486.956 160.040 17.707 44.268
1-MCP 0.751 0.452 0.678 0.075 22.608 5.752 0.537 715.875 486.500 22.608 56.519
3% O2+1% CO2 0.725 0.433 0.649 0.071 21.636 5.557 0.529 602.265 373.283 21.636 54.090
3% O2+5% CO2 0.712 0.420 0.630 0.069 20.990 5.291 0.478 572.825 268.456 20.990 52.475
90 CK 0.444 0.247 0.371 0.041 12.358 4.161 0.381 275.099 109.750 12.358 30.895
1-MCP 0.701 0.348 0.522 0.057 17.401 5.060 0.442 471.389 354.592 17.401 43.504
3% O2+1% CO2 0.517 0.339 0.509 0.056 16.951 4.770 0.417 446.475 239.102 16.951 42.378
3% O2+5% CO2 0.515 0.327 0.491 0.054 16.370 4.549 0.406 292.564 186.600 16.370 40.925

Fig. 3

Effects of different storage conditions on the respiration rate of Yuhuangli plum"

Table 4

Changes in the types of aroma substances in Yuhuangli plum under different storage conditions"

贮藏天数
Storage time (d)
处理
Treatment
总量
Total
酯类
Esters
醇类
Alcohols
醛类
Aldehydes
酮类
Ketones
烯类
Alkenes
呋喃类
Furans
其他类
Others
0 CK 54 17 9 16 7 3 2 0
30 CK 52 16 10 13 6 1 4 2
1-MCP 44 10 11 12 7 1 3 0
3% O2+1% CO2 37 12 6 9 5 1 2 2
3% O2+5% CO2 43 15 9 11 4 1 1 2
60 CK 53 11 11 17 5 3 4 2
1-MCP 39 8 7 12 4 3 2 3
3% O2+1% CO2 49 9 10 14 6 3 4 3
3% O2+5% CO2 59 21 11 12 5 5 2 3
90 CK 53 11 10 17 6 3 3 3
1-MCP 39 8 7 11 5 3 2 3
3% O2+1% CO2 48 9 9 14 6 3 4 3
3% O2+5% CO2 55 19 11 12 5 4 2 2

Table 5

Percentage of aroma substance content in Yuhuangli plum under different treatments"

贮藏天数
Storage time (d)
处理
Treatment
百分比 Percentage (%)
酯类
Esters
醇类
Alcohols
醛类
Aldehydes
酮类
Ketones
烯类
Alkenes
呋喃类
Furans
其他类
Others
0 CK 36.53 10.83 50.55 1.40 0.31 0.39 0.00
30 CK 45.55 15.82 34.15 3.26 0.02 0.88 0.32
1-MCP 36.49 16.64 42.87 2.25 0.08 1.67 0.00
3% O2+1% CO2 23.07 16.71 51.93 6.60 0.18 0.93 0.59
3% O2+5% CO2 30.80 8.10 35.93 0.81 0.10 0.46 23.81
60 CK 6.35 7.49 81.21 3.85 0.30 0.41 0.38
1-MCP 6.07 5.93 84.75 0.85 0.47 0.30 1.64
3% O2+1% CO2 6.17 8.37 79.52 4.42 0.52 0.46 0.53
3% O2+5% CO2 10.71 6.13 59.02 0.76 1.30 0.12 21.96
90 CK 6.33 7.37 81.07 4.03 0.30 0.33 0.56
1-MCP 6.02 5.92 84.63 0.95 0.47 0.38 1.63
3% O2+1% CO2 6.10 8.06 79.78 4.44 0.53 0.56 0.53
3% O2+5% CO2 10.69 6.10 59.68 0.75 0.60 0.12 22.04

Table 6

Eigenvalues of principal components and variance contribution rate"

主成分
Principal component
特征值
Eigenvalue
方差贡献率
Variance
contribution rate (%)
累计方差贡献率
Cumulative variance contribution rate (%)
1 29.729 18.737 18.737
2 19.291 16.984 35.722
3 12.469 15.13 50.852
4 10.629 12.825 63.677
5 6.892 9.242 72.919
6 4.615 8.511 81.43
7 3.854 5.151 86.581
8 2.417 2.983 89.564

Table 7

Key aroma components of Yuhuangli plum under different storage conditions"

分类 Classification 化合物 Compound
酯类
Esters
三甲氧基酯、乙酸戊酯、正己酸乙酯、梨醇酯、己酸丁酯、顺-3-己烯基丁酯、醋酸辛酯、己酸己酯、2-甲基-丙酸3-羟基-2, 2, 4-三甲基戊基酯、2, 2, 4-三甲基-1, 3-戊二醇二异丁酸酯、乙酸庚酯、辛酸正丁酯、(E)-己-2-烯基乙酸酯、辛酸乙酯、丁酸乙酯、(Z)-己-2-烯基乙酸酯、乙酸乙酯、2-甲基丁酸乙酯、碳酸二乙酯、(E)-2-甲基-2-丁烯酸乙酯、乙酸苄酯
Trimethyl orthoformote; Acetic acid, pentyl ester; Ethyl caproate; 2-Buten-1-ol, 3-methyl-, acetate; Hexanoic acid butyl ester; (Z)-Butanoic acid, 3-hexenyl ester; Acetic acid, octyl ester; Hexanoic acid, hexyl ester; 3-hydroxy-2, 2, 4-trimethylpentyl isobutyrate; 2, 2, 4-trimethyl-1, 3-pentanediol diisobutyrate; Acetic acid, heptyl ester; Butyl caprylate; (E)-2-Hexen-1-ol, acetate; Octanoic acid, ethyl ester; Butanoic acid, ethyl ester; (Z)-2-Hexen-1-ol, acetate; Ethyl Acetate; Butanoic acid, 2-methyl-, ethyl ester; Diethyl carbonate; Ethyl tiglate; Benzyl acetate
醇类
Alcohols
正戊醇、里那醇、正辛醇、异戊醇、反式-2-壬烯-1-醇、甘油、1-壬醇、苯甲醇、3-戊烯-1-醇
Pentanol; Linalool; 1-Octanol; 1-Butanol, 3-methyl-; (E)-2-Nonen-1-ol; Glycerin; 1-nonanol; Benzyl alcohol; 3-Penten-1-ol
醛类 Aldehydes 反式-2-戊烯醛、正辛醛、(E, E)-2, 4-庚二烯醛、异戊醛 (E)-2-Pentenal; octanal; (E,E)-2, 4-Heptadienal; Isovaleraldehyde
酮类
Ketones
3-辛酮、6-甲基-5-庚烯-2-酮、4-羟基-2-丁酮、反式-beta-紫罗酮、异佛尔酮、5-甲基-3-庚酮、5-乙基-4-甲基-3-庚酮
3-Octanone; 6-Methyl-5-hepten-2-one; 4-Hydroxy-2-butanone; trans-.beta.-Ionone; Isophorone; 3-Heptanone, 5-methyl-; 3-Heptanone, 5-ethyl-4-methyl-
烯类 Alkenes (+)-柠檬烯、环辛四烯、alpha-柏木烯、苯乙烯 (+)-Limonene; 1, 3, 5, 7-cyclooctatetraene; Alpha-Cedrene; Phenylethylene
呋喃类 Furans 甲基四氢呋喃、八氢-6-甲基-3-亚甲基苯并呋喃 Furan, tetrahydro-3-methyl-; Benzofuran, octahydro-6-methyl-3-methylene-
其他类
Others
(Z)-3-己烯-1-醇、2, 5-二甲基-甲酸、乙基烯丙基醚、3-甲基-4-氧代戊酸、己酸
(Z)-3-Hexen-1-ol; 2, 5-dimethyl-, formate; Allyl ethyl ether; Pentanoic acid,3-methyl-4-oxo-; Hexanoic acid

Fig. 4

PCA of aroma in Yuhuangli plum under different storage conditions A: CK; B: 1-MCP; C: 3% O2+1% CO2; D: 3% O2+5% CO2. 1: Storage 0 day; 2: Storage 30 days; 3: Storage 60 days; 4: Storage 90 days"

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