Response of peanut genotypes to mid-season moisture stress: phenological, morpho-physiological, and yield traits
Chuni Lal A C , K. Hariprasanna A , A. L. Rathnakumar A , J. B. Misra A , M. Y. Samdur B , H. K. Gor A , B. M. Chikani A and V. K. Jain AA Directorate of Groundnut Research, P. B. # 5, Junagadh – 362 001, Gujarat, India.
B Indian Agriculture Research Institute, Regional Research Station, Indore – 452 001, India.
C Corresponding author. Email: chunilal_nrcg@rediffmail.com
Crop and Pasture Science 60(4) 339-347 https://doi.org/10.1071/CP08183
Submitted: 29 May 2008 Accepted: 22 January 2009 Published: 21 April 2009
Abstract
Nine peanut genotypes were evaluated in two seasons under irrigated and simulated mid-season drought conditions to investigate the influence of water stress on some phenological, morpho-physiological, and yield traits. Analysis of variance revealed significant genotypic differences for all the traits studied. Water saturation deficit and epicuticular wax load increased in response to water stress and age of the crop, while specific leaf area decreased with water stress and age of the crop. In general, correlations of water saturation deficit (WSD), epicuticular wax load (EWL), and specific leaf area (SLA) with yield traits were fairly weak. WSD in the early stage under irrigated conditions was found to be positively associated with pod yield under water stress; EWL in the early stage was negatively associated with harvest index (HI) under stress. Although significant and negative correlations of SLA were found only when it was recorded in the early stage under stress and the later stage under irrigated conditions with HI and pod yield (PY), both under irrigated conditions, the trends of its associations showed that SLA had rather weak and negative correlations with PY and HI both under irrigated and stress conditions. Genotypes that accumulated flowers sooner after initiation showed less yield reduction. The negative association between HI under stress and its reduction deems HI under moisture stress an important criterion of selection for drought tolerance in peanut.
Additional keywords: drought tolerance, epicuticular wax load, harvest index, specific leaf area, water saturation deficit, pod yield.
Bengston
,
Larsson CS, Liljenberg C
(1978) Effect of water stress on cuticular transpiration rate and amount and composition of epicuticular wax in seedlings of six oat varieties. Physiologia Plantarum 44, 319–324.
| Crossref |
Clavel D,
Sarr B,
Marone E, Ortiz R
(2004) Potential agronomic and physiological traits of Spanish groundnut varieties (Arachis hypogaea L.) selection criteria under end-of-cycle drought conditions. Agronomie 24, 101–111.
| Crossref | GoogleScholarGoogle Scholar |
Coffelt TA,
Sealon ML, Vanscoyoc SW
(1989) Reproductive efficiency of 14 Virginia-type peanut cultivars. Crop Science 29, 1217–1220.
Collino DJ,
Dandanelli JL,
Sereno R, Racca RW
(2001) Physiological responses of Argentine peanut varieties to water stress. Light interception, radiation use efficiency and partitioning assimilates. Field Crops Research 70, 177–184.
| Crossref | GoogleScholarGoogle Scholar |
Craufurd PQ,
Wheeler TR,
Ellis RH,
Summerfield RJ, Williams JH
(1999) Effect of temperature and water deficit on water-use efficiency, carbon isotope discrimination, and specific leaf area in peanut. Crop Science 39, 136–142.
Dhopte AM, Zade VR
(1981) Influence of growth habit on harvest index of groundnut and its correlation with yield. Indian Journal of Plant Physiology 24, 37–41.
Duncan WG,
McCloud DE,
McGraw RL, Boote KJ
(1978) Physiological aspects of peanut yield improvement. Crop Science 18, 1015–1020.
Ebercon A,
Blum A, Jordan WR
(1977) A rapid colorimetric method for epicuticular wax content of sorghum leaves. Crop Science 17, 179–180.
Hebbar KB,
Sashidhar VR,
Udhayakumar M,
Devendra R, Nageswara Rao RC
(1994) A comparative assessment of water use efficiency in groundnut (Arachis hypogaea) grown in containers and in the field under water-limited conditions. Journal of Agricultural Science 122, 429–434.
| Crossref |
Hubick KT,
Farquhar GD, Shorter R
(1986) Correlation between water-use efficiency and carbon isotope discrimination in diverse peanut (Arachis) germplasm. Australian Journal of Biological Sciences 13, 803–816.
|
CAS |
Jefferson PG,
Johanson DA,
Runbaugh MD, Asay KH
(1989) Water stress and genotypic effects on epicuticular wax production of alfalfa and crested wheat grass in relation to yield and excised leaf water loss rate. Canadian Journal of Plant Science 69, 481–490.
Johnson DA,
Richards RA, Turner NC
(1983) Yield water relations, gas exchange, and surface reflectances of near-isogenic wheat differing in glaucousness. Crop Science 23, 318–325.
Jordan WR,
Shouse PJ,
Blum A,
Miller FR, Monk RL
(1984) Environmental physiology of sorghum. II. Epicuticular wax load and cuticular transpiration. Crop Science 24, 1168–1173.
Lal C,
Basu MS, Rathnakumar AL
(1998) Reproductive efficiency and genetic variability in Spanish bunch peanut (Arachis hypogaea L.). Green Journal 1, 43–48.
Murty PSS,
Reddy PJR, Sankara Reddy GH
(1983) Variation in the physiological parameters of popular groundnut varieties. Madras Agricultural Journal 70, 603–610.
Nageswara Rao RC,
Talwar HS, Wright GC
(2001) Rapid assessment of specific leaf area and leaf nitrogen in peanut (Arachis hypogaea L.) using a chlorophyll meter. Journal of Agronomy & Crop Science 186, 175–182.
| Crossref | GoogleScholarGoogle Scholar |
Nageswara Rao RC,
Udaykumar M,
Farquhar GD,
Talwar HS, Prasad TG
(1995) Variation in carbon isotope discrimination and its relationship to specific leaf area and ribulose-1, 5-bisphosphate carboxylase content in groundnut genotype. Australian Journal of Plant Physiology 22, 545–551.
Nageswara Rao RC, Wright GC
(1994) Stability of the relationship between specific leaf area and carbon isotope discrimination across environment in peanut. Crop Science 34, 98–103.
Nageswara Rao RC,
Wright GC, Cruickshank AL
(2000) Genetic enhancement of drought resistance in Australian peanuts. Proceedings of American Peanut Research Education Society 32, 71.
Nautiyal PC,
Nageswara Rao RC, Joshi YC
(2002) Moisture-deficit-induced changes in leaf-water content, leaf carbon exchange rate and biomass production in groundnut cultivars differing in specific leaf area. Field Crops Research 74, 67–79.
| Crossref | GoogleScholarGoogle Scholar |
Nigam SN, Aruna R
(2008) Stability of soil plant analytical development (SPAD) chlorophyll meter reading (SCMR) and specific leaf area (SLA) and their association across varying soil moisture stress conditions in groundnut (Arachis hypogaea L.). Euphytica 160, 111–117.
| Crossref | GoogleScholarGoogle Scholar |
CAS |
Paje MCM,
Ludlow MM, Lawn RJ
(1988) Variation among soybean (Glycine max L. Merr.) accessions in epidermal conductance of leaves. Australian Journal of Agricultural Research 39, 363–373.
| Crossref | GoogleScholarGoogle Scholar |
Premachandra GS,
Saneoka H,
Fujita K, Ogata S
(1992) Leaf water relations, osmotic adjustment, cell membrane stability, epicuticular wax load and growth as affected by increasing water deficit in sorghum. Journal of Experimental Botany 43, 1569–1576.
| Crossref | GoogleScholarGoogle Scholar |
CAS |
Samdur MY,
Manivel P,
Jain VK,
Chikani BM,
Gor HK,
Desai S, Misra JB
(2003) Genotypic differences and water-deficit induced enhancement in epicuticular wax load in peanut. Crop Science 43, 1294–1299.
Sharma VK, Varshney SK
(1995) Analysis of harvest index in groundnut. Journal of Oilseeds Research 12, 171–175.
Sheshshayee MS,
Bindu Madhava H,
Rachaputi NR,
Prasad TG,
Udayakumar M,
Wright GC, Nigam SN
(2006) Leaf chlorophyll concentration relates to transpiration efficiency in peanut. Annals of Applied Biology 148, 7–15.
| Crossref | GoogleScholarGoogle Scholar |
CAS |
Upadhyaya HD, Nigam SN
(1994) Inheritance of two components of early maturity in groundnut (Arachis hypogaea L.). Euphytica 78, 59–67.
Velu G, Gopalkrishnan S
(1985) Habitual and varietal variation in yield, harvest index, and quality characteristics of groundnut. Madras Agricultural Journal 72, 518–521.
Walker DW, Miller JC
(1986) Rate of water loss from detached leaves of drought resistance and susceptible genotypes of cowpea. Horticultural Science 21, 131–132.
Wright LN, Dobrenz AK
(1973) Efficiency of water use and association characteristics of Lehmann lovegrass. Journal of Range Management 26, 210–212.
| Crossref | GoogleScholarGoogle Scholar |
Wright GC,
Nageswara Rao RC, Farquhar GD
(1994) Water-use efficiency and carbon isotope discrimination in peanut under water deficit conditions. Crop Science 34, 92–97.