World Literature on Medicinal Plants from Pankaj Oudhia’s Medicinal Plant Database -64

World Literature on Medicinal Plants from Pankaj Oudhia’s Medicinal Plant Database -64

World Literature on Medicinal Plants Quoted/Consulted/Modified/Improved/Discussed/Used/Corrected in Pankaj Oudhia’s Medicinal Plant Database.

For details please visit http://www.pankajoudhia.com




Oudhia, P. (2009). Traditional Agricultural Knowledge in Indian state Chhattisgarh. 1.
Management of Nephotettix sp. in Rice (Oryza sativa) crop. 69. Neem (Azadirachta
indica) based formulation (With 45 Herbs) . CGBD (Offline Database on Chhattisgarh
Biodiversity), Raipur, India. 
Oudhia, P. (2009). Traditional Agricultural Knowledge in Indian state Chhattisgarh. 1.
Management of Nephotettix sp. in Rice (Oryza sativa) crop. 70. Neem (Azadirachta
indica) based formulation (With 41 Herbs) . CGBD (Offline Database on Chhattisgarh
Biodiversity), Raipur, India. 
Oudhia, P. (2009). Traditional Agricultural Knowledge in Indian state Chhattisgarh. 1.
Management of Nephotettix sp. in Rice (Oryza sativa) crop. 71. Neem (Azadirachta
indica) based formulation (With 42 Herbs) . CGBD (Offline Database on Chhattisgarh
Biodiversity), Raipur, India. 
Oudhia, P. (2009). Traditional Agricultural Knowledge in Indian state Chhattisgarh. 1.
Management of Nephotettix sp. in Rice (Oryza sativa) crop. 72. Neem (Azadirachta
indica) based formulation (With 36 Herbs) . CGBD (Offline Database on Chhattisgarh
Biodiversity), Raipur, India. 
Oudhia, P. (2009). Traditional Agricultural Knowledge in Indian state Chhattisgarh. 1.
Management of Nephotettix sp. in Rice (Oryza sativa) crop. 73. Neem (Azadirachta
indica) based formulation (With 3 Herbs) . CGBD (Offline Database on Chhattisgarh
Biodiversity), Raipur, India. 
Oudhia, P. (2009). Traditional Agricultural Knowledge in Indian state Chhattisgarh. 1.
Management of Nephotettix sp. in Rice (Oryza sativa) crop. 74. Neem (Azadirachta
indica) based formulation (With 2+12 Herbs) . CGBD (Offline Database on Chhattisgarh
Biodiversity), Raipur, India. 
Oudhia, P. (2009). Traditional Agricultural Knowledge in Indian state Chhattisgarh. 1.
Management of Nephotettix sp. in Rice (Oryza sativa) crop. 75. Neem (Azadirachta indica) based formulation (With 2+15 Herbs) . CGBD (Offline Database on Chhattisgarh
Biodiversity), Raipur, India. 
Oudhia, P. (2009). Traditional Agricultural Knowledge in Indian state Chhattisgarh. 1.
Management of Nephotettix sp. in Rice (Oryza sativa) crop. 76. Neem (Azadirachta
indica) based formulation (With 2+16 Herbs) . CGBD (Offline Database on Chhattisgarh
Biodiversity), Raipur, India. 
Oudhia, P. (2009). Traditional Agricultural Knowledge in Indian state Chhattisgarh. 1.
Management of Nephotettix sp. in Rice (Oryza sativa) crop. 77. Neem (Azadirachta
indica) based formulation (With 2+20 Herbs) . CGBD (Offline Database on Chhattisgarh
Biodiversity), Raipur, India. 
Oudhia, P. (2009). Traditional Agricultural Knowledge in Indian state Chhattisgarh. 1.
Management of Nephotettix sp. in Rice (Oryza sativa) crop. 78. Neem (Azadirachta
indica) based formulation (With 1+23 Herbs) . CGBD (Offline Database on Chhattisgarh
Biodiversity), Raipur, India. 
Oudhia, P. (2009). Traditional Agricultural Knowledge in Indian state Chhattisgarh. 1.
Management of Nephotettix sp. in Rice (Oryza sativa) crop. 79. Neem (Azadirachta
indica) based formulation (With 1+3 Herbs) . CGBD (Offline Database on Chhattisgarh
Biodiversity), Raipur, India. 
Oudhia, P. (2009). Traditional Agricultural Knowledge in Indian state Chhattisgarh. 1.
Management of Nephotettix sp. in Rice (Oryza sativa) crop. 80. Neem (Azadirachta
indica) based formulation (With 3 Herbs) . CGBD (Offline Database on Chhattisgarh
Biodiversity), Raipur, India. 
Oudhia, P. (2009). Traditional Agricultural Knowledge in Indian state Chhattisgarh. 1.
Management of Nephotettix sp. in Rice (Oryza sativa) crop. 81. Neem (Azadirachta
indica) based formulation (With 1+2 Herbs) . CGBD (Offline Database on Chhattisgarh
Biodiversity), Raipur, India. 
Oudhia, P. (2009). Traditional Agricultural Knowledge in Indian state Chhattisgarh. 1.
Management of Nephotettix sp. in Rice (Oryza sativa) crop. 82. Neem (Azadirachta
indica) based formulation (With 13+1 Herbs) . CGBD (Offline Database on Chhattisgarh
Biodiversity), Raipur, India. 
Oudhia, P. (2009). Traditional Agricultural Knowledge in Indian state Chhattisgarh. 1.
Management of Nephotettix sp. in Rice (Oryza sativa) crop. 83. Neem (Azadirachta
indica) based formulation (With 13+2 Herbs) . CGBD (Offline Database on Chhattisgarh
Biodiversity), Raipur, India. 
Oudhia, P. (2009). Traditional Agricultural Knowledge in Indian state Chhattisgarh. 1.
Management of Nephotettix sp. in Rice (Oryza sativa) crop. 84. Neem (Azadirachta
indica) based formulation (With 13+8 Herbs) . CGBD (Offline Database on Chhattisgarh Biodiversity), Raipur, India. 
Oudhia, P. (2009). Traditional Agricultural Knowledge in Indian state Chhattisgarh. 1.
Management of Nephotettix sp. in Rice (Oryza sativa) crop. 85. Neem (Azadirachta
indica) based formulation (With 13+9 Herbs) . CGBD (Offline Database on Chhattisgarh
Biodiversity), Raipur, India. 
Oudhia, P. (2009). Traditional Agricultural Knowledge in Indian state Chhattisgarh. 1.
Management of Nephotettix sp. in Rice (Oryza sativa) crop. 86. Neem (Azadirachta
indica) based formulation (With 13+10 Herbs) . CGBD (Offline Database on
Chhattisgarh Biodiversity), Raipur, India. 
Oudhia, P. (2009). Traditional Agricultural Knowledge in Indian state Chhattisgarh. 1.
Management of Nephotettix sp. in Rice (Oryza sativa) crop. 87. Neem (Azadirachta
indica) based formulation (With 13+11 Herbs) . CGBD (Offline Database on
Chhattisgarh Biodiversity), Raipur, India. 
Sharma, S., Aneja, M., Mayer, J., Schloter, M., Munch, J.C., 2005. Characterization of bacterial community
structure in rhizophere soil of grain legumes. Microbiol. Ecol. 49, 407-415.
Vincent, J.M., 1970. A manual for the practical study of the root nodule bacteria. Blackwell Scientific publications
Oxford and Edinburgh. Pp: 1-3.
Xie, H., Pasternak, J.J., Glick, B.R., 1996. Isolation and characterization of mutants of plant growth promoting
rhizobacterium Pseudomonas putida GR 12-2 that over produce indoleacetic acid. Curr. Microbiol. 32, 67–71.
Zhender, G.W., Yao, C., Murphy, J.F., Sikora, E.R., Kloepper, J.W., Schuster, D.J., Polston, J.E., 1999. Microbeinduced resistance against pathogens and herbivores: evidence of effectiveness in agriculture. In: Agarwal,
A.A., Tuzun, S., Bent., E. (eds.), Induced Plant Defenses Against Pathogens and Herbivores: Biochemistry,
Ecology and Agriculture. APS Press, St Paul, MN, p. 33.
Zhou, J., Xia, B., Treves, D.S., Wu, L.Y., Marsh, T.L., O’Neill, R.V., Palumbo, A.V., Tiedje, J.M., 2002. Spatial
and resource factors influencing high microbial diversity in soil. Appl. Environ. Microbiol. 68, 326-334.
[1] Alvarez M.I., Sueldo R.J., Barassi C.A., Effect of
Azospirillum on coleoptille growth in wheat seedlings under
water stress, Cereal Res. Comm. 24 (1996) 101–107.
[2] Bashan Y., Inoculants of plant growth-promoting bacteria for use in agriculture, Biotechnol. Adv. 16 (1998) 729–770.
[3] Burdman S., Volpin H., Kigel J., Kapulnik Y., Okon Y.,
Promotion of nod-gene inducers and nodulation in common
bean (Phaseolus vulgaris) roots inoculated with Azospirillum
brasilense Cd, Appl. Environ. Microbiol. 62 (1996)
3030–3033.
[4] Burdman S., Kigel J., Okon Y., Effects of Azospirillum
brasilense on nodulation and growth of common bean
(Phaseolus vulgaris L.), Soil Biol. Biochem. 29 (1997)
923–929.
[5] Burdman S., Vedder D., German M., Itzigsohn R., Kigel
J., Jurkevitch E., Okon Y., Legume crop yield promotion by
inoculation with Azospirillum, in: Elmerich C., Kondorosi A.,
Newton W.E. (Eds.), Biological Nitrogen Fixation for the 21st
Century, Kluwer Academic Publishers, Dordrecht, 1998,
pp. 609–612.
[6] Burdman S., Jurkevitch E., Okon Y., Recent advances in
the use of plant growth promoting rhizobacteria (PGPR) in
agriculture, in: Subba Rao N.S., Dommergues Y.R. (Eds.),
Microbial Interactions in Agriculture and Forestry, Vol. 2,
Science Publishers, Enfield, 2000, pp. 227–248.
[7] Creus C.M., Sueldo R.J., Barassi C.A., Shoot growth
and water status in Azospirillum-inoculated wheat seedlings
grown under osmotic and salt stresses, Plant Physiol. Biochem.
35 (1996) 939–944.
[8] Creus C.M., Sueldo R.J., Barassi C.A., Water relations
in Azospirillum-inoculated seedlings under osmotic stress, Can.
J. Bot. 76 (1998) 238–244.
[9] Groppa M.D., Zawoznik M.S., Tomaro M.L., Effect of
co-inoculation with  Bradyrhizobium japonicum and
Azospirillum brasilense on soybean plants, Eur. J. Soil Biol. 34
(1998) 75–80.
[10] Iruthayathas E.E., Gunasekaran S., Vlassak K., Effect
of combined inoculation of Azospirillum and Rhizobium on
nodulation and N2
-fixation of winged bean and soybean, Sci.
Hortic. 20 (1983) 231–240.
[11] Itzigsohn R., Kapulnik Y., Okon Y., Dovrat A.,
Physiological and morphological aspects of interactions
between Rhizobium meliloti and alfalfa (Medicago sativa) in
association with Azospirillum brasilense, Can. J. Microbiol. 39
(1993) 610–615.
[12] Okon Y., Albrecht S.L., Burris R.H., Methods for
growing Spirillum lipoferum and for counting it in pure culture
and in association with plants, Appl. Environ. Microbiol. 33
(1997) 85–88.
[13] Okon Y., Labandera-Gonzales C.A., Agronomic applications of Azospirillum: an evaluation of 20 years worldwide
field inoculation, Soil Biol. Biochem. 26 (1994) 1591–1601.
[14] Okon Y., Vanderleyden J., Root-associated
Azospirillum species can stimulate plants, ASM News 63
(1997) 366–370.
[15] Plazinski J., Rolfe B.G., Influence of Azospirillum
strains on the nodulation of clovers by Rhizobium strains, Appl.
Environ. Microbiol. 49 (1985) 984–989.
[16] Rodelas B., Gonzales Lopez J., Martinez Toledo M.V.,
Pozo C., Salmeron V., Influence of Rhizobium/Azotobacter and
Rhizobium/Azospirillum combined inoculation on mineral composition of faba bean (Vicia faba L.), Biol. Fertil. Soils 29
(1999) 165–169.
[17] Rodelas B., Gonzales Lopez J., Pozo C., Salmeron V.,
Martinez Toledo M.V., Response of faba bean (Vicia faba L.)
to combined inoculation with Azotobacter and Rhizobium leguminosarum bv. viceae, Appl. Soil. Ecol. 12 (1999) 51–59.
[18] Sarig S., Kapulnik Y., Okon Y., Effect of Azospirillum
inoculation on nitrogen fixation and growth of several winter
legumes, Plant and Soil 90 (1986) 335–342.
[19] Sarig S., Blum A., Okon Y., Improvement of the water
status and yield of field-grown grain sorghum (Sorghum bicolor) by inoculation with Azospirillum brasilense, J. Agric. Sci.
110 (1988) 271–277.
[20] Singh C.S., Subba Rao N.S., Associative effects of
Azospirillum brasilense with Rhizobium japonicum on nodulation and yield of soybean (Glycine max), Plant and Soil 90
(1979) 335–342.
[21] Soussi M., Lluch C., Ocana A., Comparative study of
nitrogen fixation and carbon metabolism in two chick-pea
(Cicer arietinum L.) cultivars under salt stress, J. Exp. Bot. 50
(1999) 1701–1708.
[22] Tchebotar V.K., Kang U.G., Asis C.A., Akao S., The
use of GUS-reporter gene to study the effect of AzospirillumRhizobium coinoculation on nodulation of white clover, Biol.
Fertil. Soils 27 (1998) 349–352.
[23] Volpin H., Burdman S., Castro-Sowinski S., Kapulnik
Y., Okon Y., Inoculation with Azospirillum increased exudation of rhizobial nod-gene inducers by alfalfa roots, Mol. PlantMicrobe Interact. 9 (1996) 388–394.
[24] Yahalom E., Okon Y., Dovrat A., Early nodulation in
legumes inoculated with Azospirillum and Rhizobium,
Symbiosis 6 (1988) 69–80.
[25] Yahalom E., Dovrat A., Okon Y., Czosnek H., Effect
of inoculation with Azospirillum brasilense strain Cd and
Rhizobium on the morphology of burr medic (Medicago polymorpha L.), Isr. J. Bot. 40 (1991) 155–164.
[26] Zurayk R., Adlan M., Baalbaki R., Saxena M.C.,
Interactive effects of salinity and biological nitrogen fixation
on chickpea (Cicer arietinum L.) growth, J. Agron. Crop Sci.
180 (1998) 249–258.
Anonymous. 2000. Agricultural Statistic of Pakistan (1990-2000). Ministry of Food, Agriculture
and Live stock, Government of Pakistan, Islamabad. pp. 45.
Ahmad, Z. and A. Rabbani. 1992. Genetic variability and correlation studies in rice bean. Pakistan
J. Agric. Res., 13(2): 121-125.
Ashraf, M., A. Ghafoor, N.A. Khan and M. Yousaf. 2002. Path coefficient in wheat under rainfed
conditions. Pak. J. Agric. Res., 17(1): 1-6.
Bakhsh, A., A. Ghafoor and B.A. Malik. 1993. Genetic variability and correlation in Lentil. Pak. J.
Agric. Res., 14(2&3): 246-250.
Dewey, J.R. and K. H. Lu. 1959. A correlation and path coefficient analysis components of crested
wheat seed production. Agron. J., 51: 515-518.
Ghafoor, A., M. A. Zahid, Z. Ahmad, M. Afzal and M. Zubair. 2000. Selecting superior mungbean
lines on the basis of genetic diversity and harvest index. Pak. J. Bio. Sci., 3(8): 1270-1273.
Ghafoor, A., M. Zubair and B.A. Malik. 1990. Path analysis in mash (Vigna mungo L.). Pak. J.
Botany, 22(2): 160-167.
Islam, M., Q.K. Begum and A.K. Kaul. 1984. Phenotypic variability and character correlation in
kabuli chickpea. Bangladesh J. Agric. Res., 9(1): 33-37.
Johanson, N.W., H.E. Robinson and R.E. Comstok. 1955. Estimates of genetic and environmental
variability in soybean. Agron. J., 47: 314-318.
Khan, I.A., M. Bashir and B.A. Malik. 1989. Character association and their implication in
chickpea breeding. Pak. J. Agri. Sci., 26(2): 214-220.
Malik, B.A., S.A. Hussain, A.M. Haqqani and  A.H. Chaudhry. 1983. Genetic variability in
mungbean (Vigna radiata). Pak. J. Agri. Sci., 48(12): 729-735.
Malik, B.A., M. Tahir, I.A. Khan, M. Zubair and A.H. Choudhary. 1987.  Genetic variability,
character correlations and Path analysis of yield components in mungbean (Vigna radiata (L.)
Wilczek). Pak. J. Bot., 9: 89-97.
Malik, B.A., I.A. Khan and M.R. Malik. 1988. Genetic variability and correlations among metric
traits in chickpea. Pak. J. Agric. Res., 9(3): 352-354.
Reeve, Y.U. and J.S. Rao. 1981. Path analysis of yield components in black gram. Indian J. Agric.
Sci., 51: 378-381.
Sandhu, T.S., B.S. Bhullar, H.S. Cheema and J.S. Brar. 1978. Grain Protein, yield and its
components in urdbean. Indian J. Genet. Pl. Br., 38(3): 410-415.
Steel, R.G.D. and J.S. Torrie. 1980. Principles and Procedures of Statistics. A biological approach.
Second Edition. McGraw Hill Book Company Inc., New York. Toronto.
Singh, R.K. and B.D. Chaudhry. 1979.  Biometrical methods in quantitative genetic analysis.
Kalyani Publ., New Delhi.
Yadav, G.C., P. K. Singh, B.B. Singh and R. Verma. 2001. Genetic variability and Path coefficients
in urdbean. Indian J. Pulses Res., 14(2): 143-144.
1. Saxena, M.C., The Challenge of Developing Biotic and Abiotic
Stress Resistance in Cool-Season Food Legumes, in Breeding for
Stress Tolerance in Cool-Season Food Legumes, Edited by K.B.
Singh and M.C. Saxsena, A Wiley-Sayce Publication, p:3-14,
1993.
2. Wery, J., Adaptation to Frost and Drought Stress in Chickpea and
Implications in Plant Breeding, in M.C. Saxena, J.I. Cubero and J.
Wery, (eds.), Present Status and Future Prospect of Chickpea Crop
Production and Improvement in the Mediterranean Countries,
Options Mediterraneennes, Serie A: Seminaires Mediterranees:
No:9, Zarogosa, Spain: CIHEAM, p:77-85, 1990.
3. Johansen, B., Baldev, B., Brouwer, J.B., Erskine, W., Jermyn,
W.A., Li-Juan, L., Malik, B.A., Ahad Miah, A., Slim, S.N., Biotic
and Abiotic Stresses Constraining Productivity of Cool Season
Food Legumes in Asia, Africa and Oceania, in Expanding the
Production and Use of Cool Season Food Legumes, Eds. F.J.
Muehlbauer and W.J. Kaiser, Kluwer Academic Pub., printed the
Netherlands, p:175-194, 1994.
4. Wery, J., Slim, S.N., Knights, E.J., Malhotra, R.S., Cousin, R.,
Screening Techniques and Sources of Tolerance to Extremes of
Moisture and Air Temperature in Cool Season Food Legumes, in
Expanding the Production and Use of Cool Season Food Legumes,
Eds. F.J. Muehlbauer and W.J. Kaiser, Kluwer Academic Pub.,
printed the Netherlands, p:439-456, 1994.
5. Singh, K.B., Malhotra, R.S., Halila, M.H., Knights, E.J., Verma,
M.M., Current Status and Future Strategy in Breeding Chickpea
for Resistance to Biotic and Abiotic Stresses, in Expending the
Production and Use of Cool Season Food Legumes, Eds. F.J.
Muehlbauer and W.J. Kaiser, Klwer Academic Pub., printed the
Netherlands, p:572-591, 1994.
6. Anonymous, 1996. T.C. Başbakanlık Devlet Meteoroloji İşleri
Genel Müdürlüğü Yayınları, Ankara (unpublished).
7. Rosielle, A.A., Hamblin, J., Theoretical Aspects of Selection for
Yield in Stress and Non-Stress Environments, Crop Science, 21,
943-946, 1981.
8. Fischer, R.A., Maurer, R., Drought Resistance in Spring Wheat
Cultivars, I. Grain Yield Response, Aust. J. Agric. Res., 29, 897-
912, 1978.
9. Singh, K.B., Problems and Prospects of Stress Resistance
Breeding in Chickpea, in Breeding for Stress Tolerance in CoolSeason Food Legumes, Eds. by K.B. Singh and M.C. Saxena, A
Wiley-Sayce Pub. p:17-35, 1993.
10. Wery, J., Turc, O., Lecoeur, J., Physiological and Morphological
Basis of Biotic and Abiotic Stress Resistance in Chickpea, in
Breeding for Stress Tolerance in Cool-Season Food Legumes, Eds.
K.B. Singh and M.C. Saxsena, A Wiley-Sayce Publication, p:311-
320, 1993.
11. Hawtin, G.C. and Singh, K.B., Prospects and Potential of Winter
Sowing of Chickpeas in the Mediterranean Region, in Ascochyta
blight and winter sowing of chickpea (Saxena M.C. and Singh,
K.B. eds.) The Mague, Neterlands: Martinus Nijhoff/Junk Pub.,
p:7-16, 1984.
12. Sadiq, I.I., Siddiqui, K.A., Arain, C.R., Azmi, A.R., Wheat Breding
in a Water-Stress Environment. I. Delineation of Drought
Tolerance and susceptibility, Plant Breeding, 113, 36-46, 1994.
13. ICARDA, Increased Biomass Yield, Legume Program, Annual
Report for 1993, Aleppo, Syria, p:22-23, 1994.
14. Singh, K.B., Malhotra, R.S., Withcombe, J.R., Kabuli Chickpea
Germplasm Catalog, ICARDA, Aleppo, Syria, 1983.
15. Eser, D., Hertability of Some Important Characters, Their
Relationships with Yield and Inheritance of Blight Resistance in
Chickpea (Cicer arietinum L.), Heritability of Some Important Plant
Characters, Their Relationships with Plant Yield: Ankara
Üniversitesi, Ziraat Fakültesi Yayınları 620, pp:40, 1976.
16. Baker, R.J., Breeding Methods and Selection Indices for Improved
Tolerance to Biotic and Abiotic Stresses in Cool Season Food
Legumes, in Expanding the Production and Use of Cool Season
Food Legumes, Eds. F.J. Muehlbauer and W.J. Kaiser, Kluwer
Academic Pub., printed the Netherlands, p:429-438, 1994.
[1] Kannaiyan,S., Kumar,K. and Govindarajan, K.
Biofertilizer technology for rice based cropping
system. Scientific pub. ( India), Jodhpur (2004).
[2] Yosef, B.B., Rogers, R.D., Wolfram, J.H. and Richman,
E. J.Soil sci soci of America, 63: 1703-1708 (1999).
[3] Sharma, K. In: Manual of Microbiology. Isolation,
Purification and Identification of Bacteria. Ane Books
Pub. New Delhi, p. 41 (2005).
[4] Bisen, P.S. and Verma, K. In: “Handbook of
Microbiology.” CBS publishers and distributors, New
Delhi (1996).
[5] Pikovskaya, R.I.. Microbiologia, 17: 362-370 (1948).
[6] Ponmurugan, P. and Gopi, C., African J. Biotechnol.,
5(4): 348-350(2006).
[7] Chaykovskaya, L.A., Patyka, V.P. and Melnychuk,
T.M. Phosphorus mobilizing microorganisms and their
influence on the productivity of plants. In: Plant
Nutrition-Food Security and Sustainability of
Agroecosystem. Horst W.J.  (Ed.) p. 668-669 (2001).
[8] Goenadi, D.H., Siswanto, Y and Sugiarto, Y. Soil
science society of America journal, 64: 927-932 (2000).
[9] Lal, L. In: Phosphate mineralizing and solubilizing
microorganisms. Phosphatic Biofertilizers. Agrotech
Pub. Academy, Udaipur, p. 224 (2002).
Abbo, S., J. Berger and N.C. Turner.  2003. Evolution of cultivated chickpea: Four bottlenecks
limit diversity and constrain adaptation. Func. Pl. Bio., 30: 1081-1087.
Akhtar, A., M. Riazul Haq and M. Afzal.  2003. Utilization of chickpea germplasm in Punjab,
Pakistan. Proc. Seminar on “Sustainable Utilization of Plant Genetic Resources for
Agricultural Production” 17-19 Dec. 2002, NARC, Islamabad, Pakistan.
Akhtar, A., M. Ali and M. Afzal. 2004. A new large seeded desi chickpea variety for Punjab
Province of Pakistan. ICPN, 11: 20-21.
Anonymous. 2005. FAOSTAT database. Food and Agriculture Organization of the United Nation,
Rome, Italy. http://faostat.fao.org.
Anonymous. 2006. FAOSTAT database. Food and Agriculture Organization of the United Nation,
Rome, Italy. http://faostat.fao.org.
Arumuganathan, K. and E.D. Earle. 1991. Nuclear DNA content of some important plant species.
Pl.  Mol. Bio. Rep., 9: 208-218.
Blixt, S. 1970. Studies of induced mutations in peas. XXVI. Genetically controlled differences in
radiation sensitivity. Agri. Hort. Genet., 28: 55-116.
Cheema, A.A. and B.M. Atta. 2003. Radiosensitivity studies in Basmati rice.  Pak. J. Bot., 
      35(2): 197-207.
Dixit, P. and D.K. Dubey.  1986. Mutagenesis efficiency  of gamma rays, NMU and their
combinations in Lentil (Lens culinaris Medik) var. T.36. Indian J. Genet., 46(3): 501-505.
Desai, R.M. and C.R. Bhatia. 1975. Mutagenecity of N-mehyl-N-nitrosourea and N-ethy-Nnitrosourea in durum wheat. Mutation Res., 27: 119-121.
Gaikwad, N.B. and V.S. Kothekar. 2004. Mutagenic effectiveness and efficiency of ethyl methane
sulphonate and sodium azide in lentil. Indian J. Genet., 64(1): 73-74.
Gordon, S.A. and R.P. Webber 1955. Studies on the mechanism of phytohormone damage by
ionizing radiation. Pl.  Physiol., 30: 200-210.  
Gupta, and Yashvir. 1975. Induced mutations in Foxtail Millet (Setaria italica Beauv.). I. Chlorophyll
mutations induced by gamma rays, EMS and DES. Theor. Appl. Genet., 45: 242-249.
Haq, M.A, M. Sadiq, M. Hassan, T.M. Shah and S. Hina. 2002. CM 2000-A new Kabuli chickpea
variety. Pak. J of Seed Tech., 1(1): 45-49.
Haq, M.A., M. Hassan and M. Sadiq. 2001. A multiple disease resistant chickpea mutant variety.
Mutation Breeding Newsletter, 45: 5.
Jhon, A.S. 1999. Mutation frequency and chlorophyll mutations in parents and hybrid of cowpea
following gamma irradiation. Indian J. Genet., 59: 357-361.
Kaul, B.L. 1969. The effect of some treatment conditions on the radiomimetic activity of 1-mehyl –
3-nitro-1-nitrosoguanidine in plants. Mutation Res., 7: 43-49.
Kharakwal, M.C., H.K. Jain and B. Sharma. 1988. Induced mutations for improvement of chickpea,
lentil, pea and cowpea. In:  Improvement of Grain Legume Production Using Induced
Mutations. Proc. workshop Pullman, IAEA, Vienna, pp. 89-109.
Kharakwal, M.C. 1998. Induced mutations for improvement of protein in chickpea (Cicer
arietinum L.). Indian J. Genet., 58: 61-68.
Konzak, C.P., R.A. Nilan, J. Wagner and R.J. Foster. 1965. Efficient chemical mutagenesis. Rad.
Bot., 5: 49-70.
Kumar, D.S., T. Nepolean and A. Gopalan. 2003. Effectiveness and efficiency of mutagens gamma
rays and ethyl methane sulphonate on limabean. Indian J. Genet., 37(2): 115-119.
Kundi, R.S., M.S. Gill, T.P. Singh and P.S.  Phul. 1997. Radiation-induced variability for
quantitative traits in soybean (Glycine max L. Merrill). Crop Improv., 24(2): 231-234.
Ladizinsky, G. and A. Adler. 1976. The origin of chickpea (Cicer arietinum L.) Euphytica, 25: 211-217.
Lamprecht, H. 1960. Über Blattfarben von Phanerogamen. Klassifikation, Terminologie und
Gensymbole von chlorophyll und anderen Farbmutanten. Agri. Hort. Gen., 18: 135-168.
Lev-Yadun, S., A. Gopher and S. Abbo. 2000. The cradle of agriculture. Science, 288: 1062-1063.
Nadarajan, N., R.S. Ramalingam and N. Shivaswamy. 1982. Investigation on induced
macromutations in Cajanus cajan. Madras Agric. J., 69(11): 713-717.
Nilan, R.A., C.K. Konzak, J. Wagner and R.R. Raganit. 1965. Effectiveness and efficiency of
radiation for inducing genetic and cytogenetic changes. Rad. Bot., 5: 71-89.
Quastler, H. and Baer. 1950.  Inhibition of plant growth by irradiation. V. Radiation effects on
initiation and completion of growth. Cancer Res., 10: 604-612. 
Rajendra, K. and S.C. Mani.  1997. Chemical mutagenesis  in manhar variety of rice.  Indian J.
Genet., 57(2): 120-126.
Ramulu, K S. 1972. A comparison of mutagenic effectiveness and efficiency of NMU and MNG.
Theor. Appl. Genet., 42: 101-106.
Rapoport, I.A. 1966. Supermutagens:  Peculiarities and mechanism of action of supermutagens.
Publ. House, Nauka, Moscow  USSR, pp. 9-23.  
Sarker, A. 1985. Efficiency of early generation selection for polygenic mutations in lentil. Ph.D.
Thesis, IARI, New Delhi.
Shah, T.M., J.I.  Mirza, M.A. Haq and B.M. Atta. 2006. Induced genetic variability in chickpea
(Cicer arietinum  L.). I. Frequency and spectrum of chlorophyll mutations. Pak. J. Bot., 38(4):
1217-1226.
Sharma, 1966. A comparison of mutagenic action of NMU with various physical and chemical
mutagens in garden peas. In: Supermutagens: Peculiarities and mechanism of action of
supermutagens. Publ. House, Nauka, Moscow  USSR, pp. 143-159. 
Sharma, S.K., S. Ritu and D. Pandey. 2005. Studies on mutagen sensitivity, effectiveness and
efficiency in urdbean (Vigna mungo L.). Indian J. Genet., 65(1): 20-22.
Sharma, S.K. 1990. Mutagenic effectiveness and efficiency of EMS, DES and gamma rays in lentil.
Cytologia, 55: 243-247.
Skoog, F. 1935. The effect of X-irradiation on auxin and plant growth.  J. Cellular Comp. Physiol.,
7: 227-270.
Solanki, S.I. 2005. Isolation of macromutations  and mutagenic effectiveness and efficiency in
lentil. Indian J. Genet., 65(4): 264-268.
Solanki, I.S. and B. Sharma. 1994. Mutagenic effectiveness and efficiency of gamma rays, ethylene
imine and N-nitroso-N-ethyl urea in macrosperma lentil (Lens culinaris Medik.).  Indian J.
Genet., 54(1): 72-76.
Sparrow, A.H. 1961.  In: Mutation and Plant Breeding. National Academy of Sciences, Nat. Res.
Council Publ. Washington D.C., 892: 55-119. 
Veleminsky, J. and T. Gichner. 1970. The influence of pH on the mutagenic effectiveness of
nitroso compounds in Arabidopsis. Mutation Res., 10: 43-52.
Waghmare, V.N. and R.B. Mehra. 2001. Induced chlorophyll mutations, mutagenic effectiveness
and efficiency in Lathyrus sativus L. Indian J. Genet., 61(1): 53-56.
Westergaard, M. 1960.  A discussion of mutagen specificity, Chemische Mutagenese. Erwin Baur
Ged Vorl., 116-121.
(
Arfaoui A,  El Hadrami A, Mabrou Y,  Sifi B,
Boudabous A,  El Hadrami  I, Daayf  F, Cherif M
(2007) Treatment of chickpea with  Rhizobium
isolates enhances the expression of  phenyl-
propanoid  defense-related  genes  in  response  to 
infection  by   Fusarium oxysporum f. sp. ciceri. 
Euphytica. 45: 470-79.
Boller T, Mauch F (1988) Colorimetric assay for
chitinase. Meth Enzymol. 161: 430-435.
Burrell MM, Rees TA (1974) Metabolism of 
phenylalanine  and  tyrosine  in  rice leaves infected
by Pyricularia oryzae. Physiol Plant Pathol. 4: 497-
508.
Brunner K, Zeilinger S, Ciliento R, Woo LS, Lorito
M, Kubicek CP, Mach RL (2005) Improvement of
the fungal biocontrol agent Trichoderma Atroviride
to enhance both antagonism and induction of plant
systemic disease resistance. Appl Environ
Microbiol. 7: 3959-3969.
Chen C, Belanger RR, Benhamou N, Paulitz T (2000)
Defense enzymes induced in cucumber roots by
treatment with plant growth promoting
rhizobacteria and  Pythium aphanidermatumm.
Physiol Mol Plannt Pathol. 56: 13-23. 
De Meyer G, Capieau K, Audenaert K, Buchala A,
Metraux JP, Hofte M (1999) Nanogram amounts of
salicylic acid produced by the rhizobacterium
Pseudomonas  aeruginosa 7NSK2 activate the
systemic acquired resistance pathway in bean. Mol 
Plant-Microbe Interact. 12: 450-458. 
Dunaevsky YA, Elpidina E, Vinokurov EN,
Belozersky KS (2005) Protease inhibitors in
improvement of plant resistance to pathogens and
insects. Mol Biol. 39: 608-613.
Dubey  SC, Suresh  M,  Singh  B (2007)  Evaluation
of  Trichoderma species against  Fusarium
oxysporum f. sp.  ciceris,  for  integrated 
management  of  chickpea  wilt.Biol Control. 40:
118-127.
Elad Y, Kapat A (1999) The role of  Trichoderma
harzianum protease in the biocontrol of  Botrytis
cinerea. Eur J Plant Pathol. 105: 177-189.
Ferreira RB, Monterio S, Freitas R, Santos CN, Chen
Z, Batista LM,  Durate J, Borges A, Teixeira AR
(2007) The role of plant defence proteins in fungal
pathogenesis. Mol Plant Pathol. 5: 677-700
Harman GE  (2006)  Overview of mechanisms and
uses of  Trichoderma spp. Phytopathol. 96: 190-
194.
Jayalakshmi  SK,  Sreeramulu  K,  Benagi  VI (2003) 
Effect of Trichoderma spp. against pigeon pea wilt
caused by Fusarium udum Butler. J Biol Control.
17: 75-78.
Karthikeyan M, Radhika K, Mathiyazhagan R,
Bhaskaran R, Samiyappan R,  Velazhahan R.
(2006) Induction of phenolics and defense related
enzymes in coconut (Cocos nucifera L.) roots
treated with biocontrol agents. Braz J Plant Physiol.
18: 367-377.
Kucuk C, Kivanc M, Kinaci E, Kinaci G (2007)
Efficacy of  Trichoderma harzianum  (Rifaii) on
inhibition of ascochyta blight disease of chickpea.
Ann Microbiol. 57: 665-668 
Kucuk C Kivanc M (2008) Effect of carbon source on
the production lytic enzymes by  Trichoderma
harzianum. J. Appl  Biol Sci. 2: 23-26
Kunitz MJ (1947) Crystalline soybean trypsin
inhibitor-II: General properties.  J Gen Physiol. 30:
291-307.
Laemmli UK (1970) Cleavage of structural proteins
during the assembly of the head of bacteriophage
T4.  Nature. 227: 680-685.
Lavania M,  Chauhan PS,  Chauhan SVS, Singh HB,
Nautiyal1 CS, (2006) Induction of plant defense
enzymes and phenolics by treatment with plant
growth–promoting rhizobacteria  Serratia
marcescens NBRI1213. Curr Microbiol. 52: 363-
368.
Li L, Stiffens JC (2002) Over expression of
polyphenol oxidase in transgenic tomato plants
results in enhanced bacterial disease resistance.
Planta 215: 239-247.
Lorito M (1998) Chitinolytic enzymes and  their
genes.  In Trichoderma and Gliocladium: enzymes,
biological control and commercial applications. 
eds. G.E.  Harman and C.P. Kubicek, Vol. 2.
Taylor and Francis. Ltd. London, p 153- 172.
Lowry OH, Rosebrough NJ, Farr AL, Randall RJ
(1951) Protein measurement with the folin phenol
reagent. J Biol Chem. 193: 265-275.
Mayer AM, Harel E, Shaul RB (1965) Assay of
catechol oxidase: a critical comparison of methods.
Phytochem.  5: 783-789. 
Meena B, Radhajeyalakshmi. R, Marimuthu T,
Vidyasekaran P, Doraiswamy S, Velazhahan R
(2000) Induction of pathogenesis related proteins,
phenolics and pheylalanine ammonia-lyase in
ground nut by Pseudomonas fluorescens.  J Pl Dis
            Prot. 107: 514-527.
Miller GL (1959) Use of DNS reagent for
determination of reducing sugars. Anal Chem 31:
426-428.
Monte E  (2001)  Understanding  Trichoderma: 
between biotechnology and microbial ecology. Int
Microbiol 4: 1-4.
Mosolove VV, Loginova MD, Malova EL, Benken II
(1979) A specific inhibitor of  Colletotrichum
linndemunthianum protease from kidney bean
(Phaseolus vulgaris)             seeds. Planta 144:
265-69. 
Nelson NS (1957) Colorimetric analysis of sugars.
Method Enzymol. 3: 85-86.
Pichare MM, Kachole MS (1994) Detection of
electrophoretically separated proteinase inhibitors
using X-ray film. J Biochem Biophys Method. 28:
215-224.
Plunkett G, Senear DF, Zuroske G, Ryan CA (1982) 
Proteinase  inhibitors  I and  II from leaves  of 
wounded  tomato  plants:  purification  and 
properties. Arch Biochem Biophys. 213: 463-472.
Somogyi NJ (1957)  Notes on sugar determination. J
Biol Chem. 195: 19-23
Singh A, Srivastava S, Singh HB (2008) Effect of
substrates on growth and shelflife of Trichoderma
harzianum and its use in biocontrol of disease.
Bioresour Technol. 92:470-473. 
Song FM, Zheng Z, Ge QX (1993) Trifluralin
induced resistance of cotton to  Fusarium wilt
disease and its mechanisms.  Acta Phytopathol Sin.
23: 115-120. 
Ryan CA (1990) Protease inhibitors in plants: genes
for improving defense against insects and
pathogens.  Annu Rev Phytopathol. 28: 425-449. 
Valueva  TA,   Mosolov  VV (2004)  Role of
inhibitors of proteolytic enzymes in plant defense
against phytopathogenic  microorganisms. Biochem
(Moscow). 69: 1305-1309.
Van  Loon  LC,  Bakker  PAHM,  Pieterse  CMJ
(1998)  Systemic resistance induced by rhizosphere
bacteria. Annu RevPhytopathol. 36: 453-483.
Yedidia  I, Benhamon,N, Kapulnix Y,   Chet  I (2000) 
Induction and accumulation of PR proteins  activity 
during  early  stages  of  root  colonization  by  the
mycoparasite   T.  harzianum strain T203. Plant
Physiol Biochem. 38: 863-873.
Agrawal, I. 1986. Genetic variability  in populations of chickpea crosses.  Indian J. Agric. Sci.,
56:142-144. 
Ahmad, I., Z. Ahmad, S. Zahid and N.I. Hashmi. 1992. Performance of elite lines of wheat at
various locations under two planting times. Pak. J. Agric. Res., 13(3): 216-220.
Akdağ, C. and S. Sehirali. 1992. A study on the relationships among characters and path coefficient
analysis in chickpea (Cicer arietinum L.). Tr. J. Agric. Forest., 16: 763-772.
Anonymous. 2000-01.  Agricultural Statistics of Pakistan. Ministry of Food, Agriculture and
Livestock (Economic Wing), Islamabad. pp. 45.
Arshad, M., A. Bakhsh, A.M. Haqqani and M. Bashir. 2003a. Genotype-environment interaction
for grain yield in chickpea (Cicer arietinum L.). Pak. J. Bot., 35(2): 181-186.
Arshad, M., A. Bakhsh, M. Bashir and A.M.  Haqqani. 2002. Determining the heritability and
relationship between yield and yield components in chickpea (Cicer arietinum L.). Pak. J. B.,
34(3): 237-245.
Arshad, M., A. Bakhsh, M. Zubair and A. Ghafoor. 2003b. Genetic variability and correlation
studies in chickpea (Cicer arietinum L.). Pak. J. Bot., 35(4): 605-611.
Bahl, P.N., R.B. Mehra and D.B. Raju. 1976. Path analysis and its implications for chickpea
breeding. Z. Pfzenzuchtg, 77: 67-71.
Bakhsh, A., C.L. Hedley, B.A. Malik, S.M. Iqbal and M. Arshad. 1996. Heritable variation and
correlation between seed size, starch content and composition in chickpea (Cicer arietinum
L.). Pak. J. Bot., 28(1): 67-73.
Bakhsh, A., M. Zubair and A. Ghafoor. 1991. Character correlation and path analysis in lentil.
Pakistan J. Agriculture Research, 12: 246-251.
Bakhsh, A., T. Gull, B.A. Mailk and Afsari  Sharif. 1998. Comparison between F1s and their
parental genotypes for the patterns of character correlation and path coefficients in chickpea
(Cicer arietinum L.). Pak. J. Bot., 30(2): 219-219.
Dahiya, B.S, M.R. Naidu, R. Bakshi and M. Bali. 1986. Selection procedures in chickpea breeding.
P. 63-75. In: Genetic and crop improvement (Eds.): P.K. Gupta and J.R. Bahl. Proceedings of
the symposium on advances in genetics and crop improvement, Meerut, Dec., 1984., Rastogi
and Company, India.
Dewey. J.R. and K.H. Lu. 1959. A correlation and path coefficient analysis components of crested
wheat seed production. Agron. J., 51: 515-518.
Ghafoor, A., M.A. Zahid, Z. Ahamd, M. Afzal and M. Zubair. 2000. Selecting superior mungbean
lines on the basis of genetic diversity and harvest index. Pak. J. Bio. Sci., 3(8): 1270-1273.
Güler, M., M.S. Adak and H. Ulkan. 2001. Determining relationships between yield and some yield
components using path co-efficient analysis in chickpea (Cicer arietinum L.).  European J.
Agron., 14: 161-166.
Ihsanullah and Fida Mohammad. 2001. Correlaion of yield and yield  associated traits in spring
wheat. Sarhad J. Agric., 17(1): 2001.
Johanson, H.W., H.F. Robinson and R.E. Comstock. 1955. Estimates of genetic and environmental
variability in soybeans. Agron. J., 47: 314-318. 
Kumar, V., C.S. Kar, P.C. Sharma and V. Kumar. 1999. Variability, correlation and path analysis
in chickpea (Cicer arietinum). Environment and Ecology, 17: 936.
Malik, B.A., M. Tahir, I.A. Khan, M. Zubair and A.H. Choudhary. 1987.  Genetic variability,
character correlations and Path analysis of yield components in mungbean (Vigna Raidata L.
Wilczek). Pak. J. Bot., 9: 89-97.
Malik, B.A., S.A. Hussain, A.M. Haqqani and  A.H. Chaudhry. 1983. Genetic variability in
mungbean (Vigna Raidata). Pak. J. Agri. Sci., 48(12): 729-735.
Mehdi, S.S., K. Aziz, B. Hussain and G. Mujtaba. 1994. Heritability and  correlation studies in
segregating population of seven chickpea varieties. J. Agric. Res., 32(1). 
Naidu, M.R., B.S. Dahiya, P. Singh and M. Bali. 1986. Yield components as early generation
selection criteria for improving seed yield in chickpea. In:  International food legume
conference. (Eds.): L.E. O’ Keeffe and F.J. Muehlbauer. pp. 42. Published by College, Agric.
Univ., Idaho. 
Quresh, Z. and S. Khan. 1980. Correlation studies of some factors affecting yield in wheat (T.
aestivum L.) under rainfed conditions. Fron. J. Agri. Res., 7(2): 155-161. 
Quresh, Z., P. Shah and A. Khan. 1977. Correlation of days to heading with yield tillering and
height in wheat. Fron. J. Agri. Res., 4(1): 76-80.
Singh, V. and F. Singh. 1989. Selection criteria for yield in chickpea (Cicer arietinum L.). Ind. J.
Agri. Sci., 59: 32-35.
Steel, R.G.D. and J.S. Torrie. 1980. Principles and Procedures of statistics. A biological approach.
Second Edition. McGraw Hill Book Company Inc., New York. Toronto.
Tomar, G.S., Y. Mishra and S.F. Rao. 1982. Path analysis and its implications in selection of high
yielding chickpea (Cicer arietinum L.). Indian J. Plant Physiol., 25: 127-132.
Bakhsh A, Ghafoor A and Arshad M (2004) Path
coefficient analysis in chickpea (Cicer arietinum
L.) under rainfed conditions. Pak. J. Bot. 36: 75-81.
Dewey DR and Lu K (1959) Correlation and path
coefficients of crested wheat grass seed production.
Agron. J. 51: 515–518.
Falconer DS (1989) Introduction to quantitative
genetics, 2
nd
 edition. Longman New York, USA.
Kumar L and Arora PP (1991) Basis of selection in
chickpea. Research Reports. Int. Chickpea  Newsl.
24: 14–15.
Kwon SH and Torrie JH (1964) Heritability and
interrelation among traits of two soybean
populations. Crop Sci. 4: 196–198.
Lokendra K, Arora PP and Jeena AS (1999)
Association analysis in chickpea. Indian Agri. Sci.
Digest. 19: 199–202.
Mamun-Hossain ARM. and  Joarder N (1987) Studies
on some mechanical cells in the basal internode of
some rice cultivars in relation to lodging. Pakistan
J Agric. Res. 8: 24-28.
M-STAT-C Development Team. (1989) MSTAT
User’s Guide: A microcomputer Program for the
design, Management and analysis of agronomic
Research Experiments. Ist edition. Michigan State
Univ East Lansing, ML.
Noor F, Ashaf M and Ghafoor A (2003) Path analysis
and relationship among quantitative traits in
chickpea (Cicer arietinum L.). Pak. J. Biol. Sci. 6:
551-555.
Saleem M, Shahzad K, Javid M and Rauf SA (2002a)
Heritability Estimates for Grain Yield and Quality
Characters in Chickpea (Cicer arietinum).  Int. J.
Agri. Biol. 4: 275-276. 
Saleem M, Tahir MHN, Kabir R, Javid M and
Shahzad K (2002b). Interrelationships and Path
Analysis of Yield Attributes in Chickpea (Cicer
arietinum L.). Int. J. Agri. Biol. 4: 404-406.
Saleem M, Awan MA, Ali M and Yousaf M (1999)
Estimation of genotypic and phenotypic association
in chickpea (Cicer arietinum L.).  J. Pure and
Applied Sci. 81: 53–56.
Singh D, Sharma PC and Kumar R (1997) Correlation
and path coefficient analysis in chickpea. Crop Res.
13: 625–629.
Singh KB, Bejiga G and Malhotra RS (2004)
Associations of some characters with seed yield in
chickpea collections. Euphytica. 49: 83-88.
Toker C (2004) Evaluation of yield criteria with
phenotypic correlations and factor analysis in
chickpea. Acta Agriculturae Scandinavica, Sec. B -
Plant Soil Sci. 1: 45-48.
Toker C and Cagirgan MI (2004) The use of
phenotypic correlations and factor analysis in
determining characters for grain yield selection in
chickpea (Cicer arietinum L.). Hereditas. 140: 226-
228.
Vijayalakshmi NVS, Kumar J, Rao TN and Kumar J
(2000) Variability and correlation studies in desi,
kabuli and intermediate chickpea. Legume Res. 23:
232-236.
Yousefi B, Kazemi AH, Rahimzadeh KF and
Moghaddam M (1997) Study for some agronomic
traits in chickpea (Cicer arietinum L.) cultivars
under two irrigation regimes and path analysis of
traits under study. Iranian J. Agric. Sci. 28: 147–
162.
Yucel D O, Anlarsal AE and Yucel C (2006) Genetic
Variability, Correlation and Path Analysis of Yield,
and Yield Components in Chickpea (Cicer
arietinum L.). Turk. J. Agric. & Forestry. 30: 183-
88. 
Ahmad F., A.E., Slinkard and G.J. Scoles. 1988. Investigation into the barrier (s) to interspecific
hybridization between Cicer arietinum L. and eight other annual Cicer species. Plant Breedin,
100: 193-198.
Anonymous. 1998. International Center for Agricultural Research in the Dry land Areas:
Interspecific hybridization in Chickpea.  Annual Report,  31. http://www.icarda.cgiar.org/
publications/Annual report/98/An-Page31.HTML.
Anonymous. 2002. ‘FAOSTAT  DATABASE’ (FAO Rome) http//apps.fao.org/htm500/nphapp.pl/
production. Crops. Primary& Domain= SUA&servlet=1.
Badami, P.S., N. Nallikarjuna  and J.P. Moss. 1997. Interspecific hybridization between  Cicer
arietinum and  Cicer pinnatifidum. Plant Breeding, 116: 393-395.
Collard, B.C.Y., E.C.K. Pang and P.W. J. Taylor. 2003. Selection of wild Cicer accessions for the
generation of mapping population segregating for resistance to ascochyta blight. Euphytica,
130: 1-9.
Collard, B.C.Y., P.K. Ades, E.C.K. Pang, J.B. Brouwer and P.W.J. Taylor. 2001. Prospecting for
sources of resistance to ascochyta blight in wild Cicer species Australasian Plant Pathology,
30: 271–276.
Dey S.K., G. Singh, S.S. Gosal, and M.M. Verma. 1993.  Tissue culture response and resistance to
ascochyta blight in some interspecific crosses in chickpea. Annals of Biology, 9: 235-238.
Haware, M.P. 1993. Editorial; International Chickpea Newsletter, 29: 1.
Haware, M.P., J. Narayana Rao and R.P.S. Pundir. 1992. Evaluation of wild  Cicer species for
resistance to four chickpea diseases.  International Chickpea Newsletter, 27: 16-18.
Kahl G., D. Kaemmer, K. Weising, S. Kost, F. Weigand and M.C. Saxena. 1994. The potential of
gene technology and genome analysis for cool season food legume crops: theory and practice.
Euphytica, 73: 177–189.
Knights E.J and  K.H.M Siddique.  2002. Chickpea status and production constraints in Australia.
In: ‘Integrated Management of Botrytis Grey Mould of Chicpea in Bangladesh and Australia
workshop’ Dhaka, Bangladesh, 1-2 June 2002, pp 33-41.
Malhotra R.S., R.P.S. Pundir and W.J. Kaiser. 2000. Cicer species -conserved resources, priorities
for collection and future prospects. In ‘Linking research and marketing opportunities for
pulses in the 21st century’. (Ed.): R Knight. pp. 603–622. Kluwer Academic Publishers.
Reddy M.V. and K.B. Singh. 1984. Evaluation of a world collection of chickpea germplasm
accessions for resistance to ascochyta blight. Plant Disease, 68: 900–901.
Robertson L. D., B. Ocampo, and K.B. Singh. 1997. Morphological variation in wild annual Cicer
species in comparison to the cultigen. Euphytica,  95; 309-319.
Siddique K.H.M, R.B Brindsmead, R. Knight E.J, Knights, J.G Paull and I.A Rose. 2000.
Adaptation of chickpea (Cicer arietinum) and faba bean (Vicia faba  L.) to Australia. In:
‘Linking Research and Marketing Oppertunities for Pulses in the 21
st
 Century’. (Ed.): R
knight. pp. 289-303. Kluwer Academic Publisers: Dordrecht, The Netherlands.
Singh K.B, G.C. Hawtin, Y.L. Nene and M.V. Reddy. 1981. Resistance in chickpeas to Ascochyta
rabiei. Plant Disease, 65:586–587.
Singh K.B, R.S Malhotra, M.H Halila, E.J Knights and M.M Verma. 1994. Current status and
future strategy in breeding chickpea for resistance to biotic and abiotic stresses. Euphytica, 73:
137-149.
Singh K.B.  and  M.V. Reddy.  1993. Sources of resistance to  ascochyta blight in wild  Cicer
species. Netherlands Journal of Plant Pathology, 99: 163–167.
Singh K.B. and B. Ocampo. 1993.  Interspecific hybridization in annual Cicer species. Journal of
Genetics and Breeding, 47: 199–204.
Singh, K.B. and S. Weigand. 1994. Identification of resistant sources in Cicer species to Liriomyza
cicernia. Gen. Res. Crop Evol., 41: 75-79.
Singh, K.B., B. Ocampo. and L.D. Robertson. 1998. Diversity  for abiotic and biotic stress
resistance in the wild annual Cicer species. Gen. Resour. and Crop Evol., 45: 9-17.
Stamigna, C., R.  Mancinelli, P.  Crino, A. Infantino, A. Porta-Puglia and F. Saccardo. 1998. 
Multiple resistance to diseases in wild relatives of chickpea  (Cicer arietinum  L.). In
‘Proceedings of the 3
rd
 European conference on grain legumes’. 14–19 November 1998,
Valladolid, Spain.
van Rheenen H.A. 1991. Chickpea breeding- progress and prospects.  Plant breeding Abstracts,
61:997-1005.
Abou-Jawdah, Y., H. Sobh and A. Salameh. 2002. Antimycotic activities of selected plant flora,
growing wild in Lebanon, against phytopathogenic fungi.  J. Agri. & Food Chem.,  50(11):
3208-3213.
Afolayan, A.J. 2003. Extracts from the shoots of Arctotis arctotoides inhibit the growth of bacteria
and fungi. Pharma. Biol., 41(1): 22-25.
Bajwa, R., S. Shafique, A. Tehmina and S. Shafique. 2004. Antifungal activity of allelopathic plant
extracts IV: Growth response of Drechslera hawaiiensis, Alternaria alternate and Fusarium
moniliforme to aqueous extract of Parthenium hysterophorus. Int. J. Agri. Biol., 6(3): 511-516.
Barz, W., C. Adamek and J. Berlin. 1970. The degradation of formononetin and daidzein in Cicer
arietinum and Phaseolus aureus. Phytochem., 9: 1735-1744.
Bose, J.L. and S. Siddiqui. 1945. Studies in the constituents of chana (Cicer arientinum L.) Part II
The constitution of biochanin A. J. Sci. Ind. Res. India, 4: 231-235.
Bowers, J.H. and J.C. Locke.  2000. Effect of botanical extracts on the population density of
Fusarium oxysporum in soil and control of Fusarium wilt in the green house. Plant disease,
84(3): 300-305.
Digrak, M., M.H. Alma, A. Ilcim and S. Sen. 1999. Antibacterial and antifungal effects of various
commercial plant extracts. Pharma. Biol., 37(3): 216-220. 
Eksteen, D., J.C. Pretorius, T.D. Nieuwoudt and P.C. Zietsman. 2001. Mycelial growth inhibition
of plant pathogenic fungi by extracts of South African plant species. Annals of Appl. Biol.,
139(2): 243-249.
Grayer, R.J. and J.B. Harborne. 1994. A survey of antifungal compounds from higher plants 1982-
1993. Phytochem., 37: 19-42.
Gulluce, M., M. Sokmen, D. Daferera and G. Agar. 2003. In vitro antibacterial, antifungal and
antioxidant activities of the essential oil and methanol extracts of herbal parts and callus
cultures of Satureja hortensis L. J. of Agri. & Food Chem., 51(14): 3958-3965.
Hol, W.H.G. and J.A. Van-veen. 2002. Pyrrolizidine alkaloids from Senecio jacobaea affect fungal
growth. J. of Chem. Ecol., 28(9): 1763-1772. 
Hösel, W. and W. Barz. 1970. Flavonoide aus Cicer arietinum L. Phytochem., 9: 2053-2056.
Lazzaro, M.D. and W.W. Thomson. 1995. Seasonal variations in hydrochloric acid, malic acid and
calcium ions secreted by the trichomes of chickpea (Cicer arietinum).  Physiologica
Plantarum., 94: 291-297.
Li, J. and L. Copeland. 2000 Role of malonate in chickpea. Phytochem., 54: 585-589.
Magama, S., J.C. Pretorius and P.C. Zietsman. 2003. Antimicrobial properties of extracts from
Euclea crispa subsp crispa (Ebenaceae) towards human pathogens. South African J. of Bot.,
69(2): 193-198.
Mahmoud, A.L.E. 1999. Inhibition of growth and aflatoxin biosynthesis of Aspergillus flavus by
extracts of some Egyptian plants. Letters in Appl. Microbiol., 29(5): 334-336.
Martinez-Lozano, S.L., S. Garcia and N. Heredia. 2000. Antifungal activity of extract of sargassum
filipendula. Phyton-International J. of Exp. Bot., 66: 179-182.
Mughal, M.A., T.Z. Khan and M.A. Nasir. 1996. Antifungal activity of some plant extracts. Pak. J.
of Phytopathol., 8: 46-48. 
Muhsin, T.M., S.R. Al-Zubaidy and E.T. Ali. 2001. Effect of garlic bulb extract on the growth and
enzymatic activities of rhizosphere and rhizoplane fungi. Mycopathologia, 152(3): 143-146.
Pimbert, M.P. 1990. Some future research directions for integrated pest management in chickpea: a
viewpoint. In: Chickpea in the nineties: Proceedings of the second International Workshop on
the Chickpea Improvement, 4-8 Dec 1989, ICRISAT Center, Patancheru, India, 1990.
Pretorius, J.C., P.C. Zietsman and D. Eksteen. 2002. Fungitoxic properties of selected South
African plant species against plant pathogens of economic importance in agriculture. Annala
of Appl. Bio., 141(2): 117-124.
Puruis, C.E., R.S. Jessop and J.V. Ronette. 1985. Selective regulation of germination and growth of
annual weeds by crop residues. Weed Research, 25: 415-421. 
Reed, W., C. Cordona, S. Sithanantham and S.S. Lateef. 1987. Chickpea insect pest and their
control. In: The Chickpea (Eds.): M.C. Saxena  and K.B. Singh. CAB International Oxford,
UK.
Rembold, H. 1981. Malic acid in chickpea exudates – a marker for Heliothis resistance. Chickpea
Newsletter, 4: 18-19.
Rice, E.L. 1984. Allelopathy. 2
nd
 Ed. New York, Academic press. pp. 67-73.
Saxena, M.C. 1990. Problems and potential of chickpea production in nineties. In Chickpea in the
nineties: Proceedings of the second International Workshop on the chickpea Improvement, 4-8
Dec 1989, ICRISAT Center, Patancheru, India, 1990.
Shaukat S.S., D. Khan and S. T. Ali. 1983. Suppression of herbs by Inula grantioides Bioss in the
Sindh desert, Pakistan. Pak. J. Bot., 15(1): 43-67.
Sicker D. 1998. Detoxification of wheat allelochemicals. Appl. Environ. Microbiol., 64(7): 2386-
2391.
Singh H.P. and R.K. Kohli. 1999. A phenolic glucoside from  Populus deltoids on respiratory
activity of germinating mungbean. In:  Second World Congress on Allelopathy. Critical
Analysis & future prospects. Lakehead University, Canada, pp.168.    
Stevenson, P.C. and N.C. Veitch. 1998. The distribution of isoflavonoids in Cicer L. Phytochem.,
48: 995-1001.
Wong, E. 1975. The isoflavonoids. In: The Flavonoids (Eds.): J.B. Harborne, T.J. Mabry and H.
Mabry. Chapman and Hall, London.
Vyvyan, J.R. 2002. Allelochemicals as leads for new herbicides and agrochemicals.  Tetrahedron,
58: 1631-1646.

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