Diagnosis and Control of Sugarcane Important Diseases

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  • Ying-Kun Huang 5 ,
  • Wen-Feng Li 5 ,
  • Rong-Yue Zhang 5 &
  • Xiao-Yan Wang 5  

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There are more than 120 sugarcane diseases that have been found in the world presently (Chen 1982; Rott et al. 2000), and more than 60 have been reported in China (The important sugarcane diseases research cooperation group 1991; Lu et al. 1997; Huang and Li 2014, 2016). Mastering the disease types, damage, and distribution in the sugarcane area can provide scientific basis for the sugarcane disease-resistance breeding, quarantine of introduced varieties, and disease management and research. Sugarcane production areas in China have drought in winter and spring and hot climate and good rainfall in summer and autumn. With the rise of temperature in spring, in case of cold current as well as the rainfall and temperature decline and the poor management, planted sugarcane in winter and this season are easily infected by pineapple disease and the ratoon crops are easily damaged by red rot disease. Because the whole seedling stage is in the dry season, smut becomes substantial causing sparse breakup. After June, with the high temperature and humidity, eyespot, brown stripe, yellow spot, pokkah boeng, rust, ring spot, and leaf scorch diseases are easily occurring and epidemic. Especially in recent years, introducing seedcanes frequently and transposing seedcanes in sugarcane planting area make some dangerous seedcane-transmitted diseases (ratoon stunting disease, mosaic, smut, yellow leaf syndrome, etc.) which are spread by seedcane between sugarcane areas. Then, caused sugarcane diseases occur commonly and damage more severely; have a serious impact on sugarcane yield, quality, and ratooning capacity; and bring serious hidden trouble to the safe production of sugarcane. In order to scientifically control the spread and damage of sugarcane disease, enhancing the capabilities of disaster prevention and reduction and ensuring the quality of sugarcane variety and safety of sugarcane production in 20 diseases that commonly occur in sugarcane production are systematically described in this chapter with clear-colored photos and scientific, accurate words. The content includes the occurrence and damage, identification of symptoms, characteristics of epidemic infection, and control measures.

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Autrey LJC, Boolell S, Lockhart BEL, Nadif A (1995) The distribution of sugarcane bacilliform virus in various geographical regions. In: Napompeth B, Wisarath P (eds) Proceedings of XXI international society of sugarcane technologist. Kasetasart University Press, Bangkok, pp 527–541

Google Scholar  

Birch RG (2001) Xanthomonas albilineans and the antipathogenesis approach to disease control. Mol Plant Pathol 2(2):1–11

Article   CAS   PubMed   Google Scholar  

Birch RG, Patil SS (1985) Preliminary characterization of an antibiotic produced by Xanthomonas albilineans which inhibits DNA synthesis in Escherichia coli . J Gen Microbiol 131(5):1069–1075

CAS   PubMed   Google Scholar  

Bourne BA (1970) Studies on the bacterial red stripe disease of sugarcane in Florida. Sugarcane Pathol Newsl 4:27–33

Braithwaite KS, Egeskov NM, Smith GR (1995) Detection of sugarcane bacilliform virus the polymerase chain reaction. Plant Dis 79:792–796

Article   CAS   Google Scholar  

Cai YQ, Zhou GH (2005) Advance in sugarcane bacilliform virus disease. Sugarcane Canesugar 5:13–16

Cai YQ, Xu DL, Zhou GH, Li HP (2004) First report of sugarcane bacilliform virus in Guangdong. In: Academic annual conference of Chinese Society for Plant Pathology in 2014. China Agricultural Science and Technology Press, Beijing, pp 213–215

Chatenet M, Mazarin C, Girard JC, Fernandez E, Gargani D, Rao GP, Royer M, Lockhart B, Rott P (2005) Detection of sugarcane streak mosaic virus in sugarcane from several Asian countries. Sugar Cane Int 23(4):12–15

Chen QL (1982) Sugarcane diseases in the world. Agriculture Press, Beijing

Chen WQ (2015) Crop diseases and pests in China, 3rd edn. China Agriculture Press, Beijing

Chen J, Chen JP (2002) Sugarcane mosaic disease in Zhejiang Province was caused by sorghum mosaic virus and sugarcane mosaic virus. Chin J Virol 18(4):362–366

Cottrell-Dormer W (1932) Red stripe disease of sugarcane in Queensland. Bull Bur Sug Exp Stns Qd Div Path 3:25–59

Cronjé CPR, Bailey RA, Jones P, Suma S (1999) The phytoplasma associated with ramu stunt disease of sugarcane is closely related to the white leaf phytoplasma group. Plant Dis 83(6):588

Article   PubMed   Google Scholar  

Damayanti TA, Putra LK (2011) First occurrence of sugarcane streak mosaic virus infecting sugarcane in Indonesia. J Gen Plant Pathol 77:72–74

Article   Google Scholar  

Deng ZY, Wang BH, Liu HB, Zhu QZ, Li M, Wang WZ, Tan TM (2004) Occurrence and pathogen detection of sugarcane ratoon stunting disease in Guangxi Province. Sugar Crops China 3:35–38

Dixon LJ, Castlebury LA, Aime MC, Glynn NC, Comstock JC (2010) Phylogenetic relationships of sugarcane rust fungi. Mycol Prog 9(4):459–468

Flynn JL, Anderlini TA (1990) Disease incidence and yield performance of tissue culture generated seedcane over the crop cycle in Louisiana. J Am Soc Sugar Cane Technol 10:113

Fontana PD, Fontana CA, Bassi D, Puglisi E, Salazar SM, Vignolo GM, Coccocelli PS (2016) Genome sequence of Acidovorax avenae strain T10_61 associated with sugarcane red stripe in Argentina. Genome Announc 4(1):e01669–e01615

Article   PubMed Central   PubMed   Google Scholar  

Gao SJ, Guo JL, Chen RK, Huang XD, Xu JS, Wang QN (2007) Molecular identification and electron microscopy detection for pathogen of sugarcane yellow leaf syndrome in Fuzhou. Acta Agron Sin 33(7):1210–1213

Geijskes RJ, Braithwaite KS, Dale JL, Harding RM, Smith GR (2002) Sequence analysis of an Australian isolate of sugarcane bacilliform badnavirus. Arch Virol 147:2393–2404

Gillaspie AG, Mock RG, Smith FF (1978) Identification of sugarcane mosaic virus and characterization of strains of virus from Pakistan, Iran, and Camaroon. Proc Int Soc Sugar Cane Technol 16:347–355

Girard JC, Noëll J, Larbre F, Roumagnac P, Rott P (2014) First report of Acidovorax avenae subsp. avenae causing sugarcane red stripe in Gabon. Plant Dis 98(5):684

Gong DM, Chen RK, Lin YQ (1993) Progress of the studies of sugarcane breeding for resistance to smut ( Ustilago scitaminea Syd.). J Fujian Agric Univ 22(4):404–409

Hall JS, Adams B, Parsons TJ, French R, Lane LC, Jensen SG (1998) Molecular cloning, sequencing, and phylogenetic relationships of a new potyvirus: sugarcane streak mosaic virus, and a reevaluation of the classification of the Potyviridae. Mol Phylogenet Evol 10:323–332

Hanboonsong Y, Choosai C, Panyim S, Damak S (2002) Transovarial transmission of sugarcane white leaf phytoplasma in the insect vector Matsumuratettix hiroglyphicus (Matsumura). Insect Mol Biol 11(1):97–103

Hanboonsong Y, Ritthison W, Choosai C, Sirithorn P (2006) Transmission of sugarcane white leaf phytoplasma by Yamatotettix flavovittatus , a new leafhopper vector. J Econ Entomol 99(5):1531–1537

Hema M, Savithri HS, Sreenivasulu P (2001) Sugarcane streak mosaic virus : occurrence, purification, characterization and detection. In: Rao G, Ford R, Tosic M, Teakle D (eds) Sugarcane pathology, Virus and Phytoplasma Diseases, vol 2. Science Publishers, Enfield, pp 37–70

Huang YK, Li WF (2014) The list of harmful organism and natural enemies resources in modern sugarcane. China Agriculture Press, Beijing

Huang YK, Li WF (2016) Colored atlas of control on diseases, insect pests and weeds of modern sugarcane. China Agriculture Press, Beijing

Huang MQ, Xiao ZJ (1987) Investigation report on ratoon stunting disease on sugarcane in Guangdong. Sugarcane Canesugar 2:39–40

Huang YK, Li WF, Lu WJ, Luo ZM (2007a) The causes of sugarcane mosaic disease epidemic in Yunnan sugarcane area and the control strategy. J Yunnan Agric Univ 22(6):935–938

Huang ZR, Chen YG, Gao SJ, Guo JL, Xu LP (2007b) Research progress in sugarcane yellow leaf syndrome. J South China Univ Trop Agric 13(4):39–42

Huang YK, Li WF, Zhao J, Rao Y, Lu WJ, Li J, Luo ZM, Yang HC (2007c) Primary pathogen detection of sugarcane ratoon stunting disease in Yunnan. J Yunnan Agric Univ 22(5):25–28

CAS   Google Scholar  

Huang YK, Li WF, He WZ, Luo ZM, Wang XY, Yin J, Xue J, Zhang HH (2013) Production techniques of disease-free sugarcane seedlings with hot water treatment. Southwest China J Agric Sci 26(5):2150–2157

James G (1997) A review of ratoon stunting disease. Sugar Cane 4:9–14

Lee TSG (1987) Micropropagation of sugarcane ( Saccharum, spp. ). Plant Cell Tissue Organ Cult (PCTOC) 10(1):47–55

Lee HA, Martin JP (1925) Red-stripe disease studies: the cause of red-stripe disease of sugarcane. Hawaiian Sugar Planters’ Association, Experiment Station, Pathology Department, pp 1–8

Lei KJ, Liu ZD, Hong YZ (2008) Saturate mutagenesis analysis of sugarcane leaf scald detoxifying protein- AlbD S40 site. J Henan Univ (Nat Sci) 38(4):397–401

Li WF, Huang YK (2012) Diagnosis detection and control technology of modern sugarcane diseases. China Agriculture Press, Beijing

Li WF, Ding M, Fang Q, Huang YK, Zhang ZK, Dong JH, Su XX, Li TT (2006) Preliminary identification of sugarcane mosaic pathogen in Yunnan. Sugar Crops China 2:4–7

Li WF, Dong JH, Ding M, Fang Q, Huang YK, Su XX, Li TT, Luo YQ, Zhang ZK (2007) Detection of viruses causing sugarcane mosaic disease and molecular identification of an isolate of them in Yunan. Acta Phytopathol Sin 37(3):242–247

Li WF, Huang YK, Luo ZM, Liu JY, Lu WJ (2009a) Identification and evaluation of fine sugarcane varieties and samples resistant to SrMV-HH1. Southwest China J Agric Sci 22(1):92–94

Li WF, Huang YK, Fan YH, Li J, Lu WJ, Wu ZK, Luo ZM, Yang HC (2009b) Study on bacteria-free test of sugarcane ratoon stunting disease (RSD) by hot-water. Southwest China J Agric Sci 22(2):343–347

Li WF, Huang YK, Jiang DM, Zhang ZX, Zhang BL, Li SF (2010a) Detection of sugarcane bacilliform virus isolate and its influence on yield and quality of cane in Yunnan. Acta Phytopathol Sin 40(6):651–654

Li WF, Wang XY, Huang YK, Lu WJ, Luo ZM (2010b) Investigation of ratoon stunting disease (RSD) on sugarcane in Yunnan and evaluation of the pathogenic bacterium elimination in seed cane by hot-water treatment. Acta Phytopathol Sin 40(5):556–560

Li WF, He Z, Li SF, Huang YK, Zhang ZX, Jiang DM, Wang XY, Luo ZM (2011) Molecular characterization of a new strain of sugarcane streak mosaic virus (SCSMV). Arch Virol 156:2101–2104

Li WF, Shan HL, Huang YK, Yin J, Wang XY, Luo ZM, Shen K, Zhang RY (2013a) Occurrence dynamics and control strategies of major pests and diseases of sugarcane in Yunnan. Sugar Crops China 1:59–62

Li WF, Wang XY, Huang YK, Shan HL, Luo ZM, Ying XM, Zhang RY, Shen K, Yin J (2013b) Screening sugarcane germplasm resistant to Sorghum mosaic virus . Crop Prot 43:27–30

Li WF, Wang XY, Huang YK, Shen K, Shan HL, Luo ZM, Yin J, Jia YM, Bai ZG, Zhang RY (2013c) First report of sugarcane white leaf phytoplasma in Yunnan province, China. Can J Plant Pathol 35:407–410

Li WF, Shen K, Huang YK, Wang XY, Luo ZM, Ying XM, Yin J, Ma L, Shan HL, Zhang RY (2013d) PCR detection of ratoon stunting disease pathogen and natural resistance analysis in sugarcane core germplasms. Crop Prot 53:46–51

Li WF, Shen K, Huang YK, Wang XY, Zhang RY, Shan HL, Yin J, Luo ZM (2014a) Evaluation of resistance to Sorghum mosaic virus (SrMV) in 49 new elite sugarcane varieties/clones in China. Crop Prot 60:62–65

Li WF, Wang XY, Huang YK, Shan HL, Shen K, Luo ZM, Zhang RY, Yin J (2014b) A quarantine sugarcane white leaf disease caused by phytoplasma found in sugarcane field in Yunnan. Acta Phytopathol Sin 44(5):556–560

Li WF, Shen K, Huang YK, Wang XY, Yin J, Luo ZM, Zhang RY, Shan HL (2014c) Incidence of sugarcane ratoon stunting disease in the major canegrowing regions of China. Crop Prot 60:44–47

Li WF, Wang XY, Huang YK, Zhang RY, Shan HL, Yin J, Shen K, Luo ZM (2015a) Establishment and application of molecular detection approach for sugarcane brown rust resistance gene Bru 1. Plant Prot 41(2):120–124

Li WF, Wang XY, Huang YK, Shan HL, Zhang RY, Yin J, Luo ZM (2015b) Identification of resistance to brown rust and molecular detection of Bru 1 gene in 34 sugarcane cultivated original species. Mol Plant Breed 13(8):1814–1821

Li WF, Shan HL, Zhang RY, Pu HC, Wang XY, Cang XY, Yin J, Luo ZM, Huang YK (2018) Identification of field resistance and molecular detection of the brown rust resistance gene Bru 1 in new elite sugarcane varieties in China. Crop Prot 103:46–50

Liang J, Liang CX (2002) ROC27 – a high tonnage cane variety with resistance to a new race smut. Guangxi Sugarcane Canesugar 2:50–52

Lin JT (1952) The relationship between cane varieties and leaf scorch. Part 1. The degree of susceptibility of various cane varieties. Taiwan Sugar Exp Station 9:185–199

Lin QS, Wang JN (1996) Analysis on interaction between sugarcane varieties and smut fungus. Sugarcane 3(1):5–9

Lin YQ, Chen RK, Gong DM (1996) Analysis of quantitative inheritance for smut resistance in sugarcane. J Fujian Agric Univ 25(3):271–275

Liu YL (1986) Occurrence of leaf scorch on sugarcane in Yunnan. Sugarcane Canesugar 8:48

Lockhart BEL, Autrey LJC (1991) Mealy bug transmission of sugarcane bacilliform and sugarcane clostero-like viruses. In: Abstracts of the III International Society of Sugarcane Technologists Pathology Workshop, Mauritius, p 17

Lu GD, Li CC, Pan CZ, Zhang XB (1997) Sugarcane diseases in China. Sugarcane 10(4):19–23

Lu WJ, Li WF, Huang YK (2008) Research advances on sugarcane smut disease occurrence and control. Sugar Crops China 3:64–66

Lu WJ, Huang YK, Li WF, Wang XY, Luo ZM (2012) Development and application of nested PCR assay for detection of phytoplasma of sugarcane white leaf. Acta Phytopathol Sin 42(3):311–314

Luo ZM, Li WF, Huang YK, Yin J, Shen K, Xue J, Zhang RY, Wang XY, Shan HL (2013) Effect evaluation of difenoconazole·azoxystrobin against sugarcane pineapple disease. Chin J Trop Agric 33(12):50–52

Luo ZM, Li WF, Huang YK, Du YC, Yin J, Shen K, Xue J, Zhang RY, Wang XY, Shan HL (2014) Control effect of 28.7% metalaxyl-M·fludioxonil·thiamethoxam FS on pineapple disease in sugarcane. Chin Agric Sci Bull 30(7):316–320

Mansour IM, Hamdi YA (1980) Red stripe disease of sugarcane in Iraq. Agric Res Rev 57(2):133–141

Marcone C (2002) Phytoplasma disease of sugarcane. Sugar Technol 4:79–85

Martin J, Handojo H, Wismer C (1989) Pokkah boeng. In: Ricaud C, Egan BT, Gillaspie AG, Hughes CG (eds) Diseases of sugarcane: major diseases. Elsevier, Amsterdam, pp 157–168

Chapter   Google Scholar  

Pieretti I, Royer M, Barbe V, Carrere S, Koebnik R, Cocoancich S, Couloux A, Darrasse A, Gouzy J, Jacques MA, Lauber E, Manceau C, Mangenot S, Poussier S, Segurens B, Szurek B, Verdier V, Arlat M, Rott P (2009) The complete genome of Xanthomonas albilineans provides new insights into the reductive genome evolution of the xylem-limited Xanthomonadaceae . BMC Genomics 10(1):7428–7436

Rao GP, Singh A, Singh HB, Sharma SR (2005) Phytoplasma diseases of sugarcane: characterization, diagnosis and management. Indian J Plant Pathol 23:1–21

Riley IT, Jubb TF, Egan BT, Croft BJ (1999) First outbreak of sugarcane smut in Australia. In: Proceedings of the XXIII ISSCT Congress, New Delhi, India, pp 22–26

Rott P, Bailey RA, Comstock JC, Croft BJ, Saumtally AS (2000) A guide to sugarcane diseases. CIRAD and ISSCT, Montpellier

Ruan XY, Yan F, Sun CJ (1983) Occurrence of Puccinia erianthi on sugarcane in Yunnan province. Acta Mycol Sin 2:260–261

Ryan CC (1989) Leaf scald. In: Ricaud C, Egan BT, Gillaspie AG, Hughes CG (eds) Diseases of sugarcane: major diseases. Elsevier, Amsterdam, pp 39–58

Ryan CC, Egan BT (1989) Rust. In: Ricaud C, Egan BT, Gillaspie AG, Hughes CG (eds) Diseases of sugarcane: major diseases. Elsevier, Amsterdam, pp 189–210

Saumtally AS, Dookun-Saumtally A (2004) Leaf scald of sugarcane: a disease of worldwide importance. In: Rao GP, Saumtally AS, Rott P (eds) Sugarcane pathology. Science Publishers, Enfield, pp 65–76

Scagliusi SM, Lockhart BEL (2000) Transmission, characterization, and serology of a Luteovirus associated with yellow leaf syndrome of sugarcane. Phytopathology 90(2):120–124

Schenck S, Pearl HM, Liu Z, Moore PH, Ming R (2005) Genetic variation of Ustilago scitaminea pathotypes in Hawaii evaluated by host range and AFLP markers. Sugar Cane Int 23(1):15–19

Shan HL, Li WF, Huang YK, Wang XY, Zhang RY (2012) The damaging characteristics of sugarcane leaf scorch and its control strategies. Sugar Crops China 2:52–54

Shan HL, Li WF, Huang YK, Luo ZM, Wang XY, Shen K, Zhang RY, Yin J (2014) Investigation of diseases and insect pests on new propagation and demonstration varieties/lines in national sugarcane system. Sugar Crops China 2:50–63

Shan HL, Li WF, Huang YK, Wang XY, Zhang RY, Luo ZM, Yin J (2015) Epidemic characteristics and control strategies of sugarcane brown stripe disease. Sugar Crops China 37(6):71–73

Shan HL, Li WF, Huang YK, Wang XY, Zhang RY, Luo ZM, Yin J (2017) First detection of sugarcane red stripe caused by Acidovorax avenae subsp. avenae in Yuanjiang, Yunnan, China. Trop Plant Pathol 42(2):137–141

The important sugarcane diseases research cooperation group (1991) The preliminary report of sugarcane diseases investigation in the sugarcane planting provinces (partly), Mainland China. Sugarcane Canesugar 1:1–8

Vesminsk GE, Chinea A, Canada A (1978) Causes of the spread and development of sugarcane bacterial red stripe in Cuba. Cienc Agric 2:53–64

Viswanathan R, Premaehandran MN (1998) Occurrence and distribution of sugarcane bacilliform virus in the sugarcane germplasm collection in India. Sugar Cane 6:9–18

Walker DIT (1987) Breeding for resistance sugarcane improvement through breeding. Elsevier Science Publishers B.V., Amsterdam, pp 445–502

Wang CN (1984) Study on sugarcane brown stripe disease in Taiwan. J Taiwan Sugarcane Res Inst 105:15–31

Wang BH, Zhu QZ, Mo LX, Deng ZY, Wang WZ, Huang DF (2003) New sugarcane disease in Guangxi—sugarcane yellow leaf syndrome. Guangxi Sugarcane Canesugar 2:12–13

Wang XY, Li WF, Huang YK, Zhang RY, Luo ZM, Shan HL, Yin J, Shen K, Jia YM, Bai ZG (2014) Analyses of the 16S-23S intergenic region of the phytoplasma causing the sugarcane white leaf disease in Yunnan Province, China. Trop Plant Pathol 39:184–188

Wang XY, Li WF, Huang YK, Zhang RY, Shan HL, Luo ZM, Yin J (2015) First report of orange rust of sugarcane caused by Puccinia kuehnii in Yunnan sugarcane field. Chin Agric Sci Bull 31(18):273–277

Wang XY, Li WF, Huang YK, Zhang RY, Shan HL, Yin J, Luo ZM (2017) Molecular detection and phylogenetic analysis of viruses causing mosaic symptoms in new sugarcane varieties in China. Eur J Plant Pathol 148:931–940

Wu CF, Huang MQ (1986) Sugarcane ratoon stunting disease was found in mainland China. Sugarcane Canesugar 3:29–30

Xia HM, Huang YK, Wu CW, Fan YH, Zhao PF, Jie C (2009) Application research on evaluation system for smut-resistance identification from Australia for disease-resistance breeding in Yunnan. Southwest China J Agric Sci 22(6):1610–1615

Xu LP, Chen RK (2000) Current status and prospects of smut resistance breeding in sugarcane. Fujian J Agric Sci 15(2):26–31

Xu DL, Li JG, Zhou GH (2006) Occurrence of sugarcane yellow leaf disease in Guangdong and molecular detection of the virus pathogen. Acta Phytopathol Sin 36(5):404–406

Zhang RY, Shan HL, Li WF, Cang XY, Wang XY, Yin J, Luo ZM, Huang YK (2017) First report of sugarcane leaf scald caused by Xanthomonas albilineans (Ashby) Dowson in the province of Guangxi, China. Plant Dis 101(8):1541

Zheng JX, Gan YH (1998) Occurrence and diagnosis of ratoon stunting disease of sugarcane in Fujian. Sugarcane Canesugar 5:20–24

Zhou GH, Xu DL, Cai YQ, Chen XQ, Li JG (2006a) Preliminary identification of sugarcane viruses occurred in south China. J Guangxi Agric Biol Sci 25(3):226–228

Zhou GH, Li JG, Xu DL, Shen WK, Deng HH (2006b) Occurrence of sugarcane yellow leaf virus in south China and its transmission by the sugarcane-colonizing aphid, Ceratovacuna lanigera . Sci Agric Sin 39(10):2023–2027

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Huang, YK., Li, WF., Zhang, RY., Wang, XY. (2018). Diagnosis and Control of Sugarcane Important Diseases. In: Color Illustration of Diagnosis and Control for Modern Sugarcane Diseases, Pests, and Weeds. Springer, Singapore. https://doi.org/10.1007/978-981-13-1319-6_1

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  • v.9(17); Jan-Jun 2015

Phytochemical profile of sugarcane and its potential health aspects

Amandeep singh.

Department of Pharmacognosy, Khalsa College of Pharmacy, Amritsar, Punjab, India

Uma Ranjan Lal

1 Department of Pharmaceutical Sciences, Birla Institute of Technology, Ranchi, Jharkhand, India

Hayat Muhammad Mukhtar

2 Department of Pharmacognosy, Shaheed Bhagat Singh College of Pharmacy, Patti, Punjab, India

Prabh Simran Singh

3 Department of Pharmaceutical Chemistry, Khalsa College of Pharmacy, Amritsar, Punjab, India

Ravi Kumar Dhawan

4 Department of Pharmacology, Khalsa College of Pharmacy, Amritsar, Punjab, India

Sugarcane ( Saccharum officinarum Linn.) is an important perennial grass of Poaceae family, indigenous to tropical South Asia and Southeast Asia. It is cultivated worldwide due to the economical and medicinal value of its high yielding products. Sugarcane juice is well known as a raw material for the production of refined sugar and its wax is considered as a potential substitute for the expensive carnauba wax, which is of cosmetic and pharmaceutical interest. Refined sugar is the primary product of sugarcane juice, but during its processing, various other valuable products are also obtained in an unrefined form, such as, brown sugar, molasses, and jaggery. Sugarcane juice is widely used in India in the treatment of jaundice, hemorrhage, dysuria, anuria, and other urinary diseases. Herein, we have summarized the different phytoconstituents and health benefits of sugarcane and its valuable products. The phytochemistry of sugarcane wax (obtained from the leaves and stalks of sugarcane), leaves, juice, and its products has revealed the presence of various fatty acid, alcohol, phytosterols, higher terpenoids, flavonoids, -O- and -C-glycosides, and phenolic acids. The future prospective of some of the sugarcane products has been discussed, which needs a phytopharmacological study and has a great potential to be a valuable medicinal product.

INTRODUCTION

Sugarcane ( Saccharum officinarum Linn.) is well-known crop of the family Poaceae. India is the second largest producer of sugarcane, after Brazil.[ 1 ] Saccharum is derived from the Greek word ‘ Sakcharon ,’ which means sugar especially sucrose. S. officinarum Linn, is a perennial grass, indigenous to tropical South Asia and Southeast Asia. It has a thick longitudinal stalk, which is generally three to five meters in height, approximately 5 cm in diameter, and is characterized by its sweet taste due to its high sucrose content. It is also known as chewing and noble cane. The sugarcane crop grows well in tropical and subtropical regions. It will require well-drained soil of pH 7.5 - 8.5 and high organic matter, along with a hot and humid environment.[ 2 ] Sugarcane has been used in various parts of world for curing various diseases. In the Ayurvedic system of medicine sugarcane is used either as a single drug or in combination with some other plant materials.[ 3 , 4 ] Some native and traditional healers of the world have recommended sugarcane juice for its diuretic property.[ 5 , 6 ] It is thought that regular use of sugarcane juice will keep the urinary flow clear and fast, which will further help the kidneys to perform their function properly. Sometimes it is used with lime juice and ginger juice for better results. It is also used as aphrodisiac, laxative, cooling, demulcent, antiseptic, and tonic.[ 7 ] According to the Unani system of medicine, sugarcane juice is considered good for patients with jaundice. It is considered beneficial for the liver and is recommended that jaundice patients take in a large amount of sugarcane juice for immediate relief. The assumptions of these traditional Indian medicinal systems have been supported by modern pharmacological studies, which have indicated that sugarcane has various bioactivities like anti-inflammatory, analgesic, antihyperglycemic, diuretic, and hepatoprotective effects. Although apigenin, tricin, and luteoline glycosides like orientin, vitexin, schaftoside, and swertisin were reported as the main constituents in sugarcane juice, various policosanols and steroids were also reported in different parts of S. officinarum . Owing to these bioactivities and chemical constituents, it has been noted that from the last few years great attention has been paid to the investigation of some lead moleculesthis cheapest crop for the various diseases. In the present study, we have tried to summarize the chemical profile and pharmacological aspects of sugarcane and its products. The aim and objective behind this review is to clear the picture of what scientists have done in this field and what the future focus of this field will be.

Sugarcane crop and its various products

Sugarcane crop is cultivated for the production of sugar, but the processing of sugarcane yields various valuable products such as bagasse,[ 8 ] Brown sugar, molasses, syrup, and jaggery, along with sugar (table sugar). The processing of sugarcane in a large scale industry for the production of sugar is shown in Figure 1 . It is clearly indicated that sugar is obtained after refining of vacuum-concentrated cane juice. However, other sugarcane products such as jaggery, brown sugar, and molasses are obtained in an unrefined form.[ 9 ] On account of the unrefined form of these products, there must be a presence of some phenolic compounds, which enhance their nutritional and medicinal value.[ 10 ]

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Processing of sugarcane products

Taxonomical classification

Kingdom: Plantae

Order: Poales

Family: Poaceae

Subfamily: Panicoideae

Tribe: Andropogoneae

Genus: Saccharum

Species: S. officinarum

Botanical description

Saccharum officinarum is a perennial plant that grows in clumps consisting of a number of strong unbranched stems. A network of rhizomes forms under the soil, which sends up secondary shoots near the parent plant. The stems vary in color being green, pinkish or purple and can reach 5 cm (16 ft) in height. They are jointed, nodes being present at the bases of the alternate leaves. The internodes contain a fibrous white pith, immersed in sugary sap. The elongated, linear, green leaves have thick midribs and saw-toothed edges that grow to a length of about 30 to 60 cm (12 to 24 ins) and width of 5 cm (2.0 ins). The terminal inflorescence is a panicle up to 60 cm (24 ins) long, a pinkish plume that is broadest at the base and tapering toward the top. The spikelets are borne on side branches and are about 3 mm (0.12 ins) long and are concealed in tufts of long, silky hair. The fruits are dry and each one contains a single seed.[ 11 ] Sugarcane harvesting typically occurs before the plant flowers, as the flowering process causes a reduction in sugar content.[ 12 ]

Phytochemical profiles of sugarcane and its various products

Chemistry of sugarcane wax.

Sugarcane wax is a whitish to dark-yellowish powdery deposit on the surface of stalks and leaves of S. officinarum , which appears as a cuticle layer. It is necessary to consider sugarcane wax when reviewing the phytochemical profile of S. officinarum because of its widespread industrial application, and cosmetic and pharmaceutical interest.[ 13 ] It is a potential substitute for the expensive carnauba wax.[ 14 ] The amount of wax in sugarcane ranges between 0.1 and 0.3%, depending upon its variety.[ 15 ] Sugarcane wax is used as a commercial source of long chain fatty alcohols, acids, esters, aldehydes, and ketones. Policosanols and D-003 along with some steroids and terpenoids have also been identified and isolated from sugarcane wax. Policosanols are a mixture of long chain primary aliphatic alcohols (1 - 8) ranging from 2.5 - 80%. Octacosanol (1) constitutes 50 - 80% of the total policosanoles.[ 16 ] Other major pharmacologically active components of sugarcane wax are long chain aliphatic fatty acids (9 - 18) present at lower concentrations. The mixture of these acids is known as D-003 [ Figure 2 ].[ 17 ] Although fatty acid and fatty alcohol are reported as major constituents[ 18 , 19 , 20 , 21 , 22 ] various phytosterols (19 - 22), steroids (23 - 28), and higher terpenoids (29 - 30) have also been reported in sugarcane wax[ 23 , 24 ] [ Figure 3 ].

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Chemistry of sugarcane wax (a) Long chain saturated fatty alcohols; (b) Long chain saturated fatty acids present in D-003

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Chemistry of sugarcane wax (a) Simple phytosterols; (b) Ketosteroids; (c) Hydroxyketosteroids; (d) Higher terpenoids

Chemistry of sugarcane juice

Sugarcane juice is the first material used for the production of sugar and other various valuable products like raw sugar/brown sugar, jaggery, and molasses. Although these products are prepared from the same source, their method of processing is different, as shown in Figure 1 . Furthermore, to understand the phytochemistry of jaggery (non-centrifugal sugar), brown sugar, and molasses, it is necessary to explain the phytochemical profile of sugarcane juice. Sugarcane juice is obtained by grinding the sugarcane culms. Basically it comprises of 70 - 75% water, 13 - 15% sucrose, and 10 - 15% fiber. Before 1971, it was assumed that the color of juice might be due to the presence of plant pigments. In 1971, several color components from sugarcane juice have been identified, with chlorogenic acid (31), cinnamic acid (32), and flavones being some of them.[ 25 ] Following that, all the colored components from sugarcane juice were classified into four major classes: Plant pigments, polyphenolic compounds, caramels, and degradation products of sugars condensed with amino derivatives. Sugarcane juice was then extensively studied for their flavonoid content. Thereafter, a large number of old and new flavonoids were isolated and identified.[ 26 , 27 , 28 ] High-Performance Liquid Chromatography with Diode-Array Detection (HPLC-DAD) analysis of phenolic compounds from sugarcane juice showed the presence of phenolic acids such as hydroxycinnamic acid (33), sinapic acid (34), and caffeic acid (35), along with flavones such as apigenin (36), luteolin (37), and tricin (38) [ Figure 4 ]. Among the flavones, tricin derivatives accounted for the highest concentration.[ 29 ] Extensive chromatographic and spectroscopic studies indicated the presence of various - O - and - C - glycosides of the above-mentioned flavones, and 3947 were identified[ 30 ] [ Figure 5 ]. Four new minor flavones swertisin (48), tricin-7- O -neohesperoside-4’- O -rhamnoside (49), tricin-7- O -methylglucuronate-4’- O -rhamnoside (50), and tricin-7- O -methylglucuronide (51) were isolated and identified from sugarcane juice.[ 31 ] In addition, some novel acylated flavone glycosides, such as, tricin-7- O -β-(6’-methoxycinnamic)-glucoside (52), luteolin-8-C-rhamnosyl glucoside (53), and tricin-4’-O-(erthroguaicylglyceryl)-ether (54) were isolated, along with orientin (47), from sugarcane juice[ 32 ] [ Figure 6 ].

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Phenolic compounds identified from sugarcane juice (a) Phenolic acids; (b) Flavones

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Flavone glycosides identified from sugarcane juice (39 – 47) and from sugarcane leaves (39, 40, 46, and 47)

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New Flavone glycosides identified from sugarcane juice (48 - 52) and from sugarcane leaves (53, 54)

Chemistry of sugarcane products

Chemistry of various sugarcane products like mill syrups, brown sugar, molasses, and non-centrifugal sugar were also extensively studied.[ 33 ] In addition to some known compounds of sugarcane juice (43 - 45 and 48), three new flavonoid glycosides, tricin7-(2’-rhamnosyl)-α-galacturonide (55), orientin-7, 3’-dimethyl ether (56), and iso-orientin-7,3’- O -dimethyl ether (57), were isolated and identified from mill syrups.[ 34 ] Mollases have also been studied for their polyphenolic content. One novel O-glycoside, dehydroconiferylalcohol-9’- O -β-D-glucopyranoside (58) along with the already reported isoorientin-7, 3’- O -dimethyl ether (57) were isolated as antibacterial compounds from sugarcane molasses[ 35 ] [ Figure 7 ]. Brown sugars are also used commercially in Brazil for its nutraceutical value and other biological activities.[ 36 , 37 ] Liquid chromatography-mass spectrometry (LC-MS) analysis of aqueous and dichloromethane extracts of brown sugars confirmed the presence of various phenolic acids (59 - 63). In addition to phenolic acids, eight major volatile constituents (64 - 70) were also reported to be present in brown sugars [ Figure 8 ].

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Phenolic glycosides of the sugarcane product

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Chemical constituents of brown sugar (a) Benzoic acid derivatives; (b) Cinnamic acid derivatives; (c) Volatile constituents

A comparative study of polyphenolic compounds in various sugarcane products indicated that molasses were the richest source of phenolic acids as compared to clear juices and syrup.[ 38 ]

Chemistry of sugarcane leaves

Sugarcane leaves are also an important source of various policosanols and D-003 because of the presence of a thick coating of sugarcane wax. Along with the above-mentioned policosanols (1 - 8) and D-003 (9 - 18), sugarcane leaves are also reported to have some phenolic compounds like flavonoids. HPLC microfractionation of methanolic extract of sugarcane leaves was successfully done and various flavones - O - and - C - glycosides (39 - 40, 46 - 47, 53 - 54) were identified.

Pharmacological activity

Sugarcane contains various phytochemicals including phenolic compounds, plant sterols, and policosanols. Phenols help in the natural defense of plants against pests and diseases, while plant sterols and policosanols are the components of wax and plant oils. The phytochemicals have gained increased interest due to their antioxidant activity, cholesterol-lowering properties, and other potential health benefits. Several workers have reported the different biological activities of sugarcane in various in-vivo and in-vitro test models.

Analgesic activity

Ethanol extracts (95%) of both fresh leaves and shoots were administered intragastrically to mice at a dose of 1 g/kg. The leaf extracts were active against benzoyl peroxide-induced writhing and tail-flick response, but ethanol extract of shoots were active only against the tail-flick method.[ 39 ]

Antihepatotoxic activity

The aqueous extract of dried stems administered intraperitoneally to mice, at a dose of 25 mg/kg, was active against chloroform-induced hepatotoxicity.[ 40 ]

Antihyperglycemic activity

The ethanol extract of both dried leaves and stems was administered intragastrically to rabbits at a dose of 1 g/kg and 60 mg/animal, respectively. The ethanol extract of leaves produced weak activity against alloxan-induced hyperglycemia.[ 41 ] Furthermore, the juice of dried stems also exhibited hypoglycemic activity when administered intraperitoneally to mice at a dose of 200 mg/kg.[ 42 ]

Diuretic activity

The ethanol extract (50%) of fresh leaves administered intragastrically to rats at a dose of 40 ml/kg, was active, while its decoction did not exhibit any diuretic activity.[ 43 , 44 ]

Acetylcholine release

The effect of policosanols on the release of acetylcholine (ACh) at the neuromuscular junction in mice was examined. Results showed that policosanols enhanced either the spontaneous or the evoked ACh release to a small extent. Furthermore, it was also observed that the rate of conformational changes induced at the nicotinic receptor channel complex were also increased, which confirmed the release of ACh.[ 45 ]

Anti-inflammatory effect

Mixtures of fatty acids isolated from sugarcane wax were examined for their anti-inflammatory effect on both rats and mice. Oral administration of this mixture showed anti-inflammatory activity in the cotton pellet granuloma assay and in the carrageenan-induced pleurisy test, both in rats, as well as in the peritoneal capillary permeability test in mice.[ 46 ]

Antihypercholesterolemic effect

The antihypercholesterolemic effect of policosanols was examined on normocholesterolemic New Zealand rabbits. Policosanols were administered orally at a dose of 5 - 200 mg/kg for four weeks. Results showed that there was a significant decrease in the level of total cholesterol and low density lipoprotein cholesterol (LDL-C) in a dose-dependent manner. The serum triglyceride level was also reduced, but the reduction observed was not dose-dependent. The high-density lipoprotein level remained unchanged.[ 41 ] The policosanols were also examined for prevention of atherosclerosis in male New Zealand rabbits fed on a cholesterol-rich diet for 60 days at doses of 25 or 200 mg/kg. Policosanol-treated rabbits did not develop marked hypercholesterolemia and the intima thickness was also significantly less compared to the control animals.[ 47 ]

Antithrombotic activity

Policosanols and D-003 were examined for their platelet aggregation and antithrombotic activity in rats. Oral administration of D-003 at a single dose of 200 mg/kg and policosanols at a concentration of 25 mg/kg in rats, significantly increased the plasma level of 6 keto-PGF1-α (a stable metabolite of prostacyclin PGI (2) as compared to the control group. Furthermore, D-003 also significantly reduced the thromboxane, TxB (2), plasma levels and weight of venous thrombus in collagen-stimulated whole blood of rats[ 48 ] The pharmacokinetic study showed that the effect of D-003 was observed after 0.5 hours of dosing and the maximal effect exhibited after one to two hours of treatment.[ 49 ]

Toxicity profile of sugarcane juice

There is some presence of polycyclic aromatic hydrocarbons (PAHs) in sugarcane juice. PAHs are formed during incomplete combustion of the organic matter and their presence originates mainly from processing and cooking of food. At harvesting season most of the sugarcane plantation is burnt and this burning is an important source of PAHs. HPLC analysis of sugarcane juice collected at different periods was done, which confirmed the presence of four PAHs: Benz (a) anthracene, benzo (b) fluoranthene, benzo (k) fluoranthene, and benzo (a) pyrene in the juices collected in the harvested period.[ 50 ]

The modern phytochemical and pharmacological reports on the sugarcane crop and its different products, used as food in India, were reviewed. Sugarcane juice is commonly known as a nutritional drink in India and is considered a unique source of variable contents of different hydrophilic components, with significant biological activities. Sugarcane juice and its unrefined products such as brown sugar, molasses, and jaggery are the richest source of phenolic compounds, such as, phenolic acids, flavonoids, and different glycosides. These components justified their presence in the juice by showing significant pharmacological results. As sugarcane juice contains 70 - 75% of water, the probability of having a lipophilic compound is very less. Although the chemistry of sugarcane juice is mostly associated with sugarcane leaves and shoots in the presence of phenolic compounds, they differ from sugarcane juice in having various policosanols, D-003, and phytosterols. These lipophilic compounds are the important components of sugarcane wax and are reported to have various pharmacological effects like sympathomimetic, antihypercholesterolemic, and antithrombotic activities.

As future investigations continue, S. officinarum and its products may prove to be a rich source of new compounds and there is a wide scope for investigating more activities from the compounds isolated from this cheapest source. Although few reports have shown the presence of carcinogenic compounds such as polycyclic aromatic hydrocarbons in S. officinarum , there is still a need for more advanced studies to confirm the presence of these hydrocarbons.

Discussing about the future, three prospective goals seem to be largely open for future exploitation. Once the accurate and precise chemical composition of the compounds in S. officinarum is understood, it will lead to further studies, to understand the metabolic pathways of these useful compounds. Second, understanding the phytochemistry of certain unrefined products of sugarcane such as jaggery will further verify the thermostable chemical components of sugarcane juice, which remain in it. The third goal will be to understand the phytopharmacological studies. In addition, despite the large number of identified compounds in S. officinarum , there is a scarcity of detailed examinations of their pharmacological activities.

Source of Support: Nil

Conflict of Interest: None declared

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