Peningkatan Hasil Kedelai di Tanah Salin dengan Penggunaan Genotipa Tahan, Asam Askorbat dan Fungi Mikoriza Arbuskular

229

Abbot, L.K. and Robson, A.D. 1984. The effect of mycorrhizae on plant growth.
In :
eds D.J. Read, D.H. Lewis, A.H. Fitter and
I.J. Alexander. Agriculture and Biosciences International
Abd*El Hamid, E.K. 2009. Physiological effects of some phytoregulators on
growth, productivity and yield of wheat plant cultivated in new reclaimed
soil. PhD. Thesis. Girls College, Ain Shams University of Cairo, Egypt.
Abd*El Hamid, M., Gaballah, M.S., Rady, M and Gomaa, A. 2010. Biofertilizer
and ascorbic acid alleviated the detrimental effects of soil salinity on
growth and yield of soybean. Proceedings of the Second Science with
Africa Conference 2010.
Acquaah, G. 2007.
Publishing. United Kingdom.

. Blackwell

Agarwal, A., Gupta, S. and Sharm, R.K. 2005. Role of oxidative stress in female
reproduction.
, 3 : 28

Aghaleh, M. and Niknam, V. 2009. Effect of salinity of some physiological and
biochemical parameters in explants of two cultivars of soyb ean (
L.).
, 1 (2) : 86–94.
Alam, S.M. 1999. Nutrient uptake by plants under stress conditions. In
!
"
#
, Second Edition. ed. M. Pessarakli CRC Press :
285–313.
Aleel, K.G. 2008. Phosphate accumulation in plant : signaling.
148 : 3–5.

,

Al*Garni, S.M.S. 2006. Increasing NaCl*salt tolerance of a halophytic plant
by mycorrhizal symbiosis. $
%
$
#

, 1: 119–126.
Alguacil, M.M., Hernandez, J.A., Caravaca, F., Portillo, B. and Roldan, A. 2003.
Antioxidant enzyme activities in shoots from three mycorrhizal shrub
species afforested in a degraded semi*arid soil. Physiologia Plantarum
118: 562–570.
Aliasgharzadeh, N., Rastin, N. S., Towfigh, H. and Alizadeh, H. 2001.
Occurrence of arbuscular mycorrhizal fungi in saline soils of the Tabriz
Plain of Iran in relation to some physical and chemical properties of soil.
& 11: 119–122.

Universitas Sumatera Utara

230

Alihamsyah, T. 2004. Potensi dan pendayagunaan lahan rawa untuk peningkatan
produksi padi. Ekonomi Padi dan Beras Indonesia. Badan Litbang
Pertanian, Jakarta.
Al*Karaki, G.N. and Al*Raddad, A. 1997. Effect of arbuscular mycorrhizal fungi
and drought stress on growth and nutrient uptake of two wheat genotypes
differing in drought resistance.

& 7: 83–88.
Al*Karaki, G.N. and Clark, R.B. 1998. Growth, mineral acquisition and water
use by mycorrhizal wheat grown under water stress.
'
& 21: 263–276.
Al*Khaliel, A.S. 2010. Effect of salinity stress on mycorrhizal association and
growth reponse of peanut infected by
.
#
56 (7) : 318–324.
Allard, R.W. 1960.
York. pp. 485.

. John Wiley & Sons Inc., New

Allen, E.B. and Cunningham, G.L. 1983. Effects of vesicular*arbuscular
mycorrhizae on (
under three salinity levels. ' )
, 93 : 227–236.
Allen, M.F. 1991. *

Cambridge.
Amris, M. 1998.

Cambridge University Press,

*

An, P., Inanaga, S., Cohen, Y., Kafkafi, U.
tolerance in two soybean cultivars.
423.

. Bina Aksara. Jakarta.
and Sugimoto, Y. 2002. Salt
'
, 25 : 407–

Anas, I. 1992.
!
+. Pusat Antar Universitas Bioteknologi,
Institut Pertanian Bogor : 187–327.

Arsyad, D.M. dan A. Nur. 2006. Analisis AMMI untuk stabilitas hasil galur*galur
kedelai di lahan kering masam.
*
,
25 : 78–84.
Ashraf, M. 2004. Some important physiological selection criteria for salt tolerance
in plants. ,
& 199 : 361–376.
Ashraf, M. and Akram, N.A. 2009. Improving salinity tolerance of plants through
conventional breeding and genetic engineering: an analytical comparison.
& 27 : 744–752.
Ashraf, M. and Foolad, M.R. 2007. Roles of glycine betaine and proline in
improving plant abiotic stress resistance.
& 59 : 207–216.

Universitas Sumatera Utara

231

Atmaja, I. W. D. 2001.

!
*
Universitas Udayana. Denpasar

. Jurusan Tanah Fakultas Pertanian

Atman, 2009. Strategi peningkatan produksi kedelai di Indonesia.
*
& VIII (1) : 39*45

-

Augé, R.M. 2001. Water relations, drought and vesicular arbuscular mycorrhizal
symbiosis.
& 11 : 3–42.
Azevedo*Neto, D., Prisco, J., Eneas, J., De Abreu, C. and Gomes, E. 2006.
Effect of salt stress on antioxidative enzymes and lipid peroxidation in
leaves and roots of salt*tolerant and saltsensitive maize varieties.
& 56 : 87*94.
Azooz, M.M., Alzahrani, A.M. and Youssef, M. M. 2013. The potential role of

seed priming with ascorbic acid and nicotinamide and their interactions to
enhance salt tolerance in broad bean (.
L.). $
"
#
& 7 (13) : 2091*2100.
Bagyaraj, D.J. 1992. Ecology of vesicular*arbuscular mycorrhizae. In :
!
& #
Eds. D.K. Arora, B. Rai, K.G.
Mukerti and G.R. Knudsen. Marcel Dekker. New York. p. 3*34.
Bakhtiar,Y. 2002. Selection of vascular mycorrhiza (VAM) fungi, host plants and
spore numbers for producing inoculum.
!
, 2 (1) : 36*40.
Banaszkiewicz, T. 2011. Nutritional value of soybean meal. In : #
'
& ed. H.A. El*Shemy. InTech. Croatia. pp. 1–20.
Barakat, H. 2003. Interactive effects of salinity and certain vitamin on gene
expression and cell division. $

& 3 : 219*225.
Bartels, D. and Sunkar, R. 2005. Drought and salt tolerance in plant. "
)
#
& 24 : 23–58.
Bates, L., Waldren, R.P. and Teare, I.D. 1973. Rapid determination of free
proline for water*stress studies.
# , 39 : 205–207
Benavides, M.P., Marconi, P.L., Gallego, S.M., Comba, M.E. and Tomaro, M.L.
2000. Relationship between antioxidant defense systems and salt tolerance
in #
.$
, 27 : 273–
278.
Bernstein, L. 1981. Effects of salinity dan sodicity on plant growth. $
)
, 13 : 295*312.
Bolan, N. S. 1991. A critical review on the role of mycorrhizal in the uptake of
phosphorus by plant.
# , 134 : 189–209.


Universitas Sumatera Utara

232

Bonhert, H.J., Nelson, D.E.
environmental stresses. *

and Jensen, R.G.
1995. Adaptations to
" & 7 : 1099*111.

Borde, M., Dudhane, M. and Jite, P.K.. 2010. AM Fungi influences the
photosynthetic activity, growth and antioxidant enzym in $
L. Under salinity sonditon. '
#
& 2 (4) : 64–71.
Bradford, M.M. 1976. Rapid and sensitive method for the quantitation of
microgram quantities of protein utilizing the principle of protein*dye
binding. $

& 72 : 248–254.
Brundrett, M., Bougher, N., Dell, B., Grove, T. and Malajczuk, N. 1996. / !
)
,
$
. ACIAR. Canberra.
Cantrell, I.C. and Linderman, R.G. 2001. Preinoculation of lettuce and onion with
VA mycorrhizal fungi reduces deleterious effects of soil salinity.
# , 233 : 269–281.
Ceccarelli, S., Erskine, W., Humblin, J. and Brando, S. 2007. Genotype by
environment interaction and international breeding program.
http://www.icrisat.com.
Cekic, F.O., Unyayar, S. and Ortas, I. 2012. Effects of arbuscular mycorrhizal
inoculation on biochemical parameters in "
grown under
long term salt stress. * !
& (36) : 63*72.
Celik, O. and Atak, C. 2011. Evaluation of the proline accumulation and G’*
pyrroline*5*carboxylate synthetase (P5CS) gene expression during salinity
stress in two soybean (

L. Merr.) varieties.
, 30 : 566–577.
Chalimah, S., Muhadiono, Aznam, L., Haran, S. dan Mathius N. T. 2007.
Perbanyakan
dan $
dengan kultur pot di
rumah kaca.
, 7 (4) : 12–19.
Cha*um, S. and Kirdmanee, C. 2009. Effect of salt stress on proline accumulation,
photosynthetic ability and growth characters in two maize cultivars.
!
, 41 : 87*98.
Chen, P., Yan, K., Shao, H. and Zhao, S. 2013. Physiological Mechanisms for
High Salt Tolerance in Wild Soybean (
0 ) from Yellow River
Delta, China: Photosynthesis, Osmotic Regulation, Ion Flux and
antioxidant Capacity. 1 # 2' , 8 (12) : 83227.
Chutipaijit, S., Cha*Um, S. and Sampornpailin, K. 2009. Differential
accumulations of proline and flavonoids in indica rice varieties against
salinity. !
, 41(5) : 2497*2506.

Universitas Sumatera Utara

233

Ciftci, V., Turkmen, O., Erdinc, C. and Sensoy, S. 2010. Effects of different
arbuscular mycorrhizal fungi (AMF) species on some bean (
L.) cultivars grown in salty conditions, $
$
, 5 (24) : 3408–3416.
Cliquet, J. B. and Stewart, G.R. 1993. Ammonia assimilation in 3
infected with a vesicular arbuscular mycorrhizal fungus
.
, 101 : 865–871.

L.

Colla, G., Rouphael, Y., Cardarelli, M., Tullio, M., Rivera, C.M. and Rea, E..
2008. Alleviation of salt stress by arbuscular mycorrhizal in zucchini
plants grown at low and high phosphorus concentration.
,
# & 44 : 501–509.
Conklin, P.L. and Barth, C. 2004. Ascorbic acid, a familiar small molecule
interwined in the response of plants to ozone, pathogenes, and the onset of
senescence.
"
, 27 : 656*970.
Copeman, R.H., Martin, C.A. and Stutz, J.C. 1996. Tomato growth in response to
salinity and mycorrhizal fungi from saline or nonsaline soils.
&
31 : 341–344.
Coue´e, I., Hummel, I., Sulmon, C., Gowsbet, G. and El*Armani, A. 2004.
Involvement of polyamines in root development.
" & *
2
"
& 76 : 1–10.
Daniels, B.A. and Menge, J.A. 1981. Evaluation of the commercial potential of
the vesicular*arbuscular mucorrhizal fungus. ' )
& 87 : 345–
353.
Datta, P. and Kulkarni, M. 2014. Arbuscular Mycorrhizal Colonization Enhances
Biochemical Status in and Mitigates Adverse Salt Effect on Two
Legumes. '
#
& 6 (3) : 381–393.
Dehghan, G., Rezazadeh, L. and Habibi, G. 2011. Exogenous ascorbate improves
antioxidant defense system and induces salinity tolerance in soybean
seedlings. $
#
, 55 (2) : 261–264.
Dehne, H.W. 1982. Interaction between vesicular*arbuscular mycorrhizal fungi
and plant pathogens.
& 72 : 1115–1119.
Delgado, M.J., Ligero, F and Lluch, C. 1994. Effects of salt stress on growth and
nitrogen fixation by pea, faba*bean, common bean, and soybean plants.
#
, 26 : 371–376.
Delvian. 2003. Keanekaragaman Cendawan Mikoriza Arbuskula (CMA) di Hutan
Pantai dan Potensi Pemanfaatannya. Studi Kasus di Hutan Cagar Alam
Leuweung Sancang Kabupaten Garut, Jawa Barat. Program Pascasarjana.
Institut Pertanian Bogor.

Universitas Sumatera Utara

234

Delvian. 2005. Respon Pertumbuhan Dan Perkembangan Cendawan Mikoriza
Arbuskula Dan Tanaman Terhadap Salinitas Tanah. e*USU Repository.
Universitas Sumatera Utara. Medan.
Delvian. 2006. Peranan Ekologi dan Agronomi Cendawan Mikoriza Arbuskula. e*
USU Repository. Universitas Sumatera Utara. Medan.
Dolatabadian, A. and Jouneghani, R. S.. 2009. Impact of exogenous ascorbic acid
on antioxidant Activity and some physiological traits of common bean
subjected to salinity stress. '
$
" 0%
'
, 37 (2) : 165*172.
Duke, E.R., Johnson, C.R. and Koch, K.E. 1986. Accumulation of phosphorus,
dry matter and betaine during NaCl stress of split*root citrus seedlings
colonized with vesicular*arbuscular mycorrhizal fungi on zero, one or two
halves. ' )
& 104 : 583–590.
Ejaz, B., Sajid, Z. A. and Aftab, F. 2012. Effect of exogenous application of
ascorbic acid on antioxidant enzyme activities, proline contents, and
growth parameters of Saccharum spp. hybrid cv. HSF*240 under salt
stress. * !
, 36 : 630*640.
Ermawati, N. 2011. Isolasi dan Karakterisasi Gen Penyandi Protein Intrinsik
Membran Tonoplas dari Tanaman Halofit Salicornia herbacea.
(
& 12 (1) : 23*29.
Essa, T.A. 2002. Effect of salinity stress on growth and nutrient composition of
three soybean (
L. Merrill) cultivars.
$
"
#
& 188 : 86*93.
Essa, T.A. and Al*Ani, D.H. 2001. Effect of salt stress on the performance of six
soybean genotypes. !
#
& 4 (2) : 175–
177.
Estaun, M.V. 1989. Effect of sodium chloride and mannitol on germination and
hyphal growth of the vesicular*arbuscular mycorrhizal fungus
.$
&
, 29 : 123–129.
Evelin, H., Giri, B. and Kapoor, R. 2012. Contribution of
inoculation to nutrient acquisition and mitigation of ionic imbalance in
NaCl*stressed *
%
.
, 22 : 203–217.
Evelin, H., Kapoor, and Giri, B. 2009. Arbuscular mycorrhial fungi in alleviation
of salt stress : a review. $
, 104 : 1263*1280.
Faber, B.A., Zasoski, R.J. and Munns, D.N. 1991. A method for measuring
hyphal nutrient and water uptake in mycorrhizal plants. "
, 69 : 87–9.

Universitas Sumatera Utara

235

Fahmy A.S., Mohamed, T.M., Mohamed, S.A. and Saker, M.M. 1998. Effect of
salt stress on antioxidant activities in cell suspension cultures of
cantaloupe ("
).
#
, 22:
315–326.
Fahn, A. 1991. Anatomi Tumbuhan. Gadjah Mada University Press, Yogyakarta.
Farid, M. 2006. Seleksi kedelai tahan kekeringan dan salinitas secara in vitro dengan
NaCl.
$
, 6 (1) : 65*74.

Farouk, S. 2011. Ascorbic Acid and α*Tocopherol Minimize Salt*Induced Wheat
Leaf Senescence.
#
, 7 (3) :
58*79.
Feng, G., Zhang, F.S., Li, X.I., Tian, C.Y., Tang, C. and Rengel, Z. 2002.
Improved tolerance of maize plants to salt stress by arbuscular mycorrhiza
is related to higher accumulation of soluble sugars in roots.
,
12 : 185–190.
Feronika, A. 2003. Mikoriza : peran, prospek dan kendalanya. Fakultas Pertanian
Universitas Gadjah Mada. Yogyakarta.
Finlay, R. and Soderstro, M. B. 1992. Mycorrhiza and carbon flow to the soil. In
:
4
5
. ed. M.F.
Allen. Chapman and Hall, New York. pp. 134–162.
Frechill, S., Lasa, B., Ibarretxe, L., Lamsfus, C. And Aparicio, T.P. 2001. Pea
response to saline stress is affected by the source of nitrogen nutrition
(ammonium or nitrate).
)
& 35 : 171–179.
Fuzy, A., Biro, B., Toth, T., Hildebrandt, U. and Bothe, H. 2008. Drought, but not
salinity, determines the apparent effectiveness of halophytes colonized by
arbuscular mycorrhizal fungi.
, 165 : 1181–
1192.
Gao, J.P., Chao, D.Y. and Lin, H.X. 2007. Understanding abiotic stress tolerance
mechanisms : recent studies on stress response in rice.
, 49 : 742–750.
Gao, S.Q., Chen, M., Xu, Z.S., Zhao, C.P., Li, L., Xu, H., Tang, Y., Zhao, X.
and Ma, Y.Z. 2011. The soybean GmbZIP1 transcription factor enhances
multiple abiotic stress tolerances in transgenic plants.
, 75 : 537–553.
Gardner, F.P., Pearce, R.B. and Mitchell, R.L. 1985.
Alih bahasa. Susilo, H. 1991. UI Press. Jakarta. pp. 455.

"

.

Garg, N. and Chandel, S. 2011. Effect of mycorrhizal on growth, nitrogen fixation
and nutrient uptake ini "
(L.) under salt stress. * !
$
,
, 35 : 1–9.

Universitas Sumatera Utara

236

Garg, N. and Manchanda, G. 2008. Effect of arbuscular mycorrhizal inoculation
of salt*induced nodule senescence in " 0
0 (pigeonpea).
)
, 27: 115–124.
Ghassemi*Golezani, K. and Taifeh*Noori, M. 2011. Soybean Performance under
Salinity Stress. Soybean * Biochemistry, Chemistry and Physiology.
Intechopen. pp. 631–642.
Ghorbanli, M., Ebrahimzadeh, H. and Sharifi, M. 2004. Effects of NaCl an
mycorrhizal fungi on antioxidative enzymes in soybean.
& 48 (4) : 575*581.
Giovanetti, M. and Mosse, B. 1981. An evalution techniques for measuring
vesicular*arbuscular mycorrhizal infection in roots. ' )
, 84 :
489–500.
Giri, B., and Mukerji, K.G. 2004. Mycorrhizal inoculant alleviates salt stress in
#
and #
under field conditions :
evidence for reduced sodium and improved magnesium uptake.
, 14: 307 – 312.
Giri, B., Kapoor, R. and Mukerji, K.G. 2007. Improved tolerance of $
to salt stress by arbuscular mycorrhiza,
, may
be partly related to elevated Kþ/Naþ ratios in root and shoot tissues.
, 54 : 753 – 760.
Giri, B., Kapoor, R. and Mukerji, K.G.. 2003. Influence of arbuscular mycorrhizal
fungi and salinity on growth, biomass and mineral nutrition of $
.
,
# , 38 : 170 – 175.
Goas, G.M. and Larher, F. 1982. Accumulation of free proline and glycine betaine
in $
subjected to a saline shock: a kinetic study related to
light period.
, 55 : 383 – 388.
Habte, M. and Osorio, N.W. 2001. $

4
. College of Tropical
Agriculture and Human Resources. University of Hawaii at Manoa.
Honolulu.

Hammam, M.S., Abdalla, B.M. and Mohamed, S.G. 2001. The beneficial effects
of using ascorbic acid with some micronutrients on yield and fruit quality
of hindy bisinnara mango trees. Assuit Journal of Agricultural Science 32:
181–193.
Hammer, E.C., Nasr, H., Pallon, J., Olsson, P.A. and Wallander, H. 2011.
Elemental composition of arbuscular mycorrhizal fungi at high salinity.
, 21 : 117 * 129.
Hapsoh.

2005.

6
*

!
(

.$ (
" !
6 !
. USU Repository.

6
*

7

& *

Universitas Sumatera Utara

237

Hardiarto, T. 2010. , !
!
2(
8$
2(
8
.
Balai Besar Litbang Bioteknologi dan Sumber Daya Genetik Pertanian.
Badan Penelitian dan Pengembangan Pertanian, Kementerian Pertanian.
http://biogen.litbang.pertanian.go.id/index.php/2010/11/faktor*transkripsi*
osdreb1a*dan*osdreb1b*pada*padi/
Harjadi, S.S. dan S. Yahya. 1988. ,

#

*

. PAU IPB. Bogor.

Haryanti, S. dan Meirina, T. 2009. Optimalisasi pembukaan porus stomata daun
kedelai (
(L) merril) pada pagi hari dan sore.
, 11 (1) :.
18 * 23.
Hasegawa, P., Bressan, R., Zhu, J. and Bohnert, H. 2000. Plant cellular and
molecular responses to high salinity. $
)
, 51 : 463 * 499.
and Khalil, R.R. 2009.
Hassanein, R.A., Bassony, F.M., Barakat, D.M.
Physiological effects of nicotinamide and ascorbic acid on 3
plant
grown under salinity stress. Changes in growth, some relevant metabolic
activities and oxidative defense systems.
$
#
& 5 : 72 – 81.
Henry, G. and Grime, J. 1993.
. Charman and Hall, London pp. 211 * 213.

% $

Hirrel, M.C. 1981. The effect of sodium and chloride salts on the germination of
.
& 73: 610–617.
Horneck, D.A., Ellsworth, J.W., Hopkins, B.G., Sullivan, D.M. and Stevens,
R.G. 2007.
# %
#
"
$
'
)
. Oregon State University * University of
Idaho * Washington State University. p. 3.
Hu, C. A., Delauney, A.J. and Verma, D.P.S. 1992. A bifunctional enzyme
(delta*pyrroline*carboxylate synthetase) catalyzez the first two steps in
proline biosynthesis in plants. Proceeding of National Academy of
Sciences 89 : 9354 * 9358.
Huang, J.C., Lai, W.A., Singh, S., Hameed, A. and Young, C.C. 2013.
Response of mycorrhizal hybrid tomato cultivars under saline stress.
# #
'
& 13 (2) : 469 – 484.
Hussein, M.M., Abd El*Rheem, K.M., Khaled, S.M. and Youssef, R.A. 2011.
Growth and nutrients status of wheat as affected by ascorbic acid and
water salinity. '
#
& 9 (10) : 64 – 69.
Idris, Yakop, U.M. dan Farida, N. 2011. Kemajuan seleksi massa pada jagung
kultivar lokal kebo setelah satu siklus seleksi dalam pertanaman
tumpangsari dengan kacang tanah. "
$
, 4 (2) : 37 * 42.

Universitas Sumatera Utara

238

INVAM. 2009. ,

9
:
. URL:http://invam. caf. wvu. Edu/Myco * info

Jahromi, F., Aroca, R., Porcel, R. and Ruiz*Lozano, J.M. 2008. Influence of
salinity on the in vitro development of
and on the in
vivo physiological and molecular responses of mycorrhizal lettuce plants.
, 55 : 45–53.
Jakobsen, I. 1992. Phosporus transport by exsternal hypae of vesicular arbuscular
mycorrhizas p : 48 * 54. In :
. eds. D. J. Read, D.
H. Lewis, A. H. Fitter & I. J. Alexander. CAB. International. UK
Jaleel, C.A., Manivannan, P., Sankar, B., Kishorekumar A. and Panneerselvam,
R. 2007. Calcium chloride effects on salinity*induced oxidative stress,
proline metabolism and indole alkaloid accumulation in "
."
& (330) : 674 * 683
Jarstfer, A.G. and Sylvia, D.M. 1993. Inoculum production and inoculation
strategies for vesicular*arbuscular mycorrhiza fungi. In : #
$
$
. ed.
F.B. Metting Jr. Marcel Decker Inc. New York – Basel – Hongkong. pp.
349 – 378.
Jarstfer, A.G., Farmer*Koppenol, P. and Sylvia, D.M. 1998. Tissue magnesium
and calcium affect mycorrhiza development and fungal reproduction.
, 7 : 237 – 242.
Jiang, M. and Zhang, J. 2002. Water stress*induced abscissic acid accumulation
triggers the increased generation of reactive oxygen species and up*
regulates the activities of antioxidant enzymes in maize*leaves.
& 53 : 2401 – 2410.
Jumberi, A. dan Yufdy, M.P. 2009. Potensi Penanaman Tanaman Serealia Dan
Sayuran Pada Tanah Terkena Dampak Tsunami. www.adaptability*of*
rice*on*tsunami*affected*soil. Diakses tanggal 11 November 2010.
.
Jumin, B. 1989. $
!
#
!
,
. Raja Grafindo
Persada. Jakarta.
Juniper, S. and Abbott, L. 2006. Soil salinity delays germination and limits
growth of hyphae from propagules of arbuscular mycorrhizal fungi.
, 16 : 371–379.
Juniper, S. and Abbott, L.K. 1993. Vesicular*arbuscular mycorrhizas and soil
salinity.
, 4 : 45 – 57.
Kao, W.Y., Tsai, T.T., Tsai, H.C. and Shih, C. N. 2006. Response of three
Glycine species to salt stress.
,
56 : 120 – 125.

Universitas Sumatera Utara

239

Kartika, E. 2001. Isolasi, Karakterisasi dan Pengujian Keefektifan Cendawan
Mikoriza Vesikula Arbuskular Terhadap Bibit Kelapa Sawit Pada Tanah
Gambut Bekas Hutan.
$
, 10 (2) : 63 – 70.
Kasno, A. 1992. Pemuliaan Tanaman Kacang*kacangan. Prosiding Simposium
Pemuliaan Tanaman I. Perhimpunan Pemulia Tanaman Indonesia,
Komisariat Daerah Jawa Timur. pp. 39*68.
Katerji, N., van Hoorn, J.W., Hamdy, A. and Mastorilia, M. 2000. Salt tolerance
classification of crops according salinity and to water stress day index.
$
/
& 43 : 99 * 109.
Kaya, C., Ashraf, M., Sonmez, O., Aydemir, S., Tuna, A.L. and Cullu, M.A.
2009. The influence of arbuscular mycorrhizal colonization on key growth
parameters and fruit yield of pepper plants grown at high salinity. #
, 121 : 1 – 6.
Khalil, S.E., El*Aziz, N.G.A. and Leila, B.H.A. . 2010. Effect of water stress,
ascorbic acid and spraying time on some morphological and biochemical
composition of 2
plant.
$
#
&6
(12) : 33* 44.
Khan, A., Ahmad, M.S.A., Athar, H.U. and Ashraf, M. 2006. Interactive Effect
of foliarly applied ascorbic acid and salt stess on wheat (*
L) at the seedling stage. !
, 38 (5) : 1407 * 1414.
Khan, T.A., Mazid, M. and Mohammad, F. 2011. A review of ascorbic acid
potentialities against oxidative stress induced in plants.
$
, 28 (2) : 97–111.
Kirkhm, M.B. 1990. Plant response to water deficits. In : ed. B.A. Steward. Madison. Wisconsin. USA. pp. 323
– 342.
Kishor P. B. K., Sangam, S., Amrutha, R. N., Laxmi, P.S., Naidu, K.R., Rao, S.
Rao, K.R.S.S., Reddy, K.J., Theriappan, P. and Sreenivasulu, N. 2005.
Regulation of proline biosynthesis, degradation, uptake and transport in
higher plants: Its implications in plant growth and abiotic stress tolerance.
"
#
, 88 (3) : 424 – 438.
Koswara, S. 2006. www.ebookpangan.com.

)

!

.

Kothari, S.K., Marschner, H. and George, E. 1990. Effect of VA mycorrhizal
fungi and rhizosphere microorganism on root and shoot morphology,
growth and water relations of maize. ' )
, 116: 303–311.
Kramadibrata, K. 1998. Identifikasi tipe spora CMA (Pengenalan jamur mikoriza
arbuskular). Kumpulan Makalah Workshop “Aplikasi Cendawan Mikoriza
Arbuskula pada Tanaman Pertanian, Perkebunan dan Kehutanan”. Bogor 5
– 10 Oktober 1998.
Universitas Sumatera Utara

240

Kusmiyati, F., Purbajanti, E.D. dan Kristanto, B.A. 2009. Karakter Fisiologis,
Pertumbuhan dan Produksi Legum Pakan pada Kondisi Salin. Seminar
Nasional Kebangkitan Peternakan. Semarang.
Lan, C.H., Nguyen, T.A., Nguyen, V.T.T., Nguyen, H.H. and Mau, C.H. 2011.
Characterization of the GmDREB5 gene isolated from the soybean
cultivar Xanh Tiendai, Vietnam. 2010 International Conference on
Biology, Environment and Chemistry IPCBEE vol.1 IACSIT Press,
Singapore
Latef, A.A.H. and Miransari, M.2014. The Role of Arbuscular Mycorrhizal Fungi
in Alleviation of Salt Stress. In : 7
$
# #
. ed. M. Miransari. Springer Science Business Media New
York. pp. 23 – 38.
Li, H. S. 2000.

;
. Higher Education Press. Beijing.

Li, W.F., Wong, F.L., Tsai, S.N., Phang, T.H., Shao, G. and Lam, H.M. 2006.
Tonoplast*located GmCLC1 and GmNHX1 from soybean enhance NaCl
tolerance in transgenic bright yellow (BY)*2 cells.
& "
& 29 : 1122 – 1137.
Liao, H., Wong, T., Phang, H., Cheung, M. Y., Li, W.F., Shao, G., Yan, X. and
Lam, H.M. 2003. GmPAP3, a novel purple acid phosphatase*like gene in
soybean induced by NaCl stress but not phosphorus deficiency.
, 318
: 103– 111.
Lindermann R.G. 1994. Role of VAM in biocontrol. - Pfleger, F.L. dan R.G.
Linderman (eds.) Mycorrhizae and plant health. St. Paul: American
#
, : 1 – 26.
Liu, X., Hua, X., Guo, J., Qi, D., Wang, L., Liu, Z., Jin, Z., Chen S. and Liu,
G. 2008. Enhanced tolerance to drought stress in transgenic tobacco
plants overexpressing VTE1 for increased tocopherol production from
$
.
1
& 30 : 1275 – 1280.
Lutts, S., Majerus, V. and Kinet, J.M. 1999. NaCl effects on proline metabolism
in rice (2
) seedlings.
& 105 (3) : 450 – 458.
Lynch, J.M. 1983. #
Blackwell Scientific Publication. London.

.

Madan, S., Nainawatee, H.S., Jain, R.K. dan Chowdhury, J.B. 1995. Proline and
proline metabolising enzymes in vitro selected NaCl*tolerant
0
L. under salt stress. $
, 76 : 51 * 57.
Mahmood, A., Latif, T. and Khan, A.M. 2009. Effect of salinity on growth, yield
and yield components in Basmati rice germplasm.
!
, 41(6) : 3035 * 3045.

Universitas Sumatera Utara

241

4apegau. 2006. Pengaruh cekaman air terhadap pertumbuhan dan hasil tanaman
kedelai (
L. Merr). 6
& 41 : 43 – 49.
Mariska, I., Sjamsudin, E., Soepandie, D., Hutami, S., Husni, A., Kosmiatin M.
dan Vivi, A. 2004. Peningkatan ketahanan tanaman kedelai terhadap
aluminium melalui kultur
.
1
, 23 (2) : 46*52.
Marquez*Ortiz, J.J., Lamb, J.F.S., Johnson, L.D., Barnes, D.K. and Stucker,
R.E. 1999. Heritability of crown traits in alfalfa. "
#
, 39 : 38 *
43.
Marschner, H. 1995.

. Academic Press. London.

Marschner, H. and Cakmak, I. 1989. High light intensity enhances chlorosis and
necrosis in leaves of zinc, potassium, and magnesium dificient bean
(
: plants.
, 134 (3) : 308 * 315
Martinez, C.A., Maestri, M. and Lani, E.G. 1996. proline accumulation in andean potato (#
resistance.
#
, 116 (2) : 177 * 184.

salt tolerance and
) differing in frost

Mathur, N., Singh, J., Bohra, S. and Vyas, A. 2007. Arbuscular mycorrhizal
status of medicinal halophytes in saline areas of Indian Thar Desert.
# #
& 2 : 119 – 127.
Mattioli R., Costantino, P. and Trovato, M. 2009. Proline accumulation in plants.
#
, 4 (11) : 1016 * 1018.
McMillen, B., Juniper, S. and Abbott, L.K. 1998. Inhibition of hyphal growth of
a vesicular*arbuscular mycorrhizal fungus in soil containing sodium
chloride limits the spread of infection from spores. #
, 30 : 1639 – 1646.
Mian, A.A., Senadheera, P. and Maathuis, F.J.M. 2011. Improving crop salt
tolerance : anion and cation transporters as genetic engineering targets.
#
, 5 : 64 – 72.
Miransari, M., 2010. Contriution of arbuscular mycorrhizal symbiosis to plant
growth under different types of soil stress.
, 12 : 563 – 569
Moftah, A.E. and Michel, B.E. 1987. The Effect of Sodium Chloride on Solute
Potential and Proline Accumulation in Soybean Leaves.
,
83 : 238*240
Mohammad, M.J., Hamad, S.R. and Malkani, H.I. 2003. Population of arbuscular
mycorrhizal fungi in semi*arid environment of Jordan as influenced by
biotic and abiotic factors.
$
, 53 : 409 – 417.
Moller, I.M. 2001. Plant mitochondria and oxidative stress : electron transport,
NADPH turnover, and metabolism of reactive oxygen species. $
)
, 52 : 561–591.
Universitas Sumatera Utara

242

4ooney, H.A., Pearcy, R.W. and Ehleringer, J. 1987. Plant physiological ecology
today.
& 37 : 18 – 20.
Mosse, B. 1981. .
. Ress. Bulletin. Hawaii. Inst. Trop. Aric. And Human
Resources.
Mukerji, K.G., Jagpal, R., Bali, M. and Rani, R. 1991. The importance of
mycorrhiza for roots, p. 290*308. In :
.
eds. B.L. McMichael and H. Persson. Elsevier, Amsterdam, Netherlands.
Munns, R. 2005. Genes and salt tolerance: bringing them together. ' )
, 167 (3) : 645 – 663.
Munns, R., James, R.A. and Lauchli, A. 2006. Aproaches to increasing the salt
tolerance of wheat and other cereals.
, 57
(5) : 1025 – 1043.
Munyanziza, E., Kehri, H.K. and Bagyaraj, D.J. 1997. Agricultural intensification,
soil biodiversity and agroecosytem function in the tropic : the role of
mycorrhiza in crops amd trees. $
#
, 6 (1) : 77 – 85.
Muzakkir. 2012. Pengaruh fungi mikoriza arbuskula indigenus terhadap
pertumbuhan dan produksi jarak pagar (
"
L.) di lahan
kritis.
& 5 (1) : 18 * 26.
Nagesh, B.R. and Devaraj, V.R. 2008. High temperature and salt stress response
in french bean (
). $
"
#
&
2 : 40 – 48.
Najiyati, S., Muslihat, L. and Suryadiputra, I.N.N. 2005.
!
!
0
. Proyek Climate Change,
Forests and Peatlands in Indonesia. Wetlands International – Indonesia
Programme dan Wildlife Habitat Canada. Bogor. Indonesia.
Noctor, G. and Foyer, C. H. 1998. Ascorbate and glutathione: Keeping active
oxygen under control. $
)
& 49 : 249 * 279.
Noor, M. 1996.

1

0

. Penebar Swadaya. Jakarta.

Nunez, M., Mazzafera, P., Mazorra, L.M., Siquera, W.J. and Zullo, M.A.T.
2003. Influence of a brassinosteroid analogue on antioxidant enzymes in
rice grown in culture medium with NaCl.
, 47 : 67 –
70.
Nuraida, D. 2012. Pemuliaan tanaman cepat dan tepat melalui pendekatan marka
molekuler. %
, 2 (2) : 97 – 103.

Universitas Sumatera Utara

243

:usantara, A.D., Bertham, R.Y.H. dan Mansur, I. 2012. ! 0
!
! . Southeast Asian Regional Centre for Tropical
Biology. Bogor.
Ortas, I. and Ustuner, O. 2014. The effects of single species, dual species and
indigenous mycorrhiza inoculation on citrus growth and nutrient uptake.
#
, 63 : 64 – 69.
Passioura, J. B. 1996. Drought and drought tolerance.
20 : 79*83.

)

,

Pathan, M.S., Lee, J.D., Shannon, J.G. and Nguyen, H.T. 2007. Recent
advances in breeding for drought and salt stress tolerance in soybean.
http://www.springerlink.com/content/pg04480173816v45/
Peng, H., Feng, Y., Zhang, H., Wei, X. and Liang, S. 2012. Molecular cloning
and characterisation of genes coding for Glycine* and Proline*Rich
Proteins (GPRPs) in Soybean.
, 30 :
566 – 577.
Phang, T.H., Shao, G. and Lam, H.M. 2008. Salt tolerance in soybean.
, 50 (10) : 1196*1212.
Pignocchi, C. and Foyer, C. H. 2003. Apoplastic ascorbate metabolism and its
role in the regulation of cell signaling. "
2
,
6 : 379 * 389.
Pinaria, A., Baihaki, A., Setiamihardja, R. dan Daradjat, A.A. 1995. Variabilitas
genetik dan heritabilitas karakter*karakter biomasa 53 genotipe kedelai.
3
, 6 (2) : 88 * 92.
Pond, E.C, Menge, J.A. and Jarrel, W.M. 1984. Improved growth of tomato in
salinized soil by vesicular*arbuscular mycorrhizal fungi collected from
salin soil.
, 76 : 74 – 84.
Porcel, R., Aroca, R. and Ruiz*Lozano, J.M. 2012. Salinity stress alleviation
using arbuscular mycorrhizal fungi $
#
(
,
32 : 181 – 200.
Porcel, R., Barea, J.M., and Ruiz*Lozano, J.M. 2003. Antioxidative activities in
mycorrhizal soybean plants under drought stress and their possible
relationship to the process of nodule senescence. ' )
, 157 :
135 – 143.
Porras*Soriano A., Soriano*Martin, M.L., Porras*Piedra, A. and Azcon, R. 2009.
Arbuscular mycorrhizal fungi increased growth, nutrient uptake and
tolerance to salinity in olive trees under nursery conditions. Journal of
Plant Physiology doi : 10.1016/j.jplph.2009.02.010.
Prihatman, 2000. Kedelai (
tanggal 12 April 2011.

L.). http://www.ristek.go.id. Diakses pada

Universitas Sumatera Utara

244

Provin, T. and Pitt, J.L. 2009.
#
#
. Texas Agricultural
Extention Service. Texas A and M University System.
Rabie, G.H. and Almadini, A.M. 2005. Role of bioinoculants in development of
salt*tolerance of .
plants under salinity stress. $
, 4: 210 – 222.
Rahmawati, N. dan Rosmayati. 2010.
!
(
L.
Merril)
!
. Program Doktor Ilmu Pertanian.
Fakultas Pertanian Universitas Sumatera Utara.
Reddy, M.P. and Vora, A.B. 1986. Changes in pigment composition. Hill
reaction activity and saccharides metabolism in bajra (
S & H) leaves under NaCl salinity.
& 20 : 50 * 55.
Rosendahl C.N. dan S. Rosendahl. 1991. Influence of vesicular*arbuscular
mycorrhizal fungi (
.) on the response of cucumber ("
L.) to salt stress.
, 31:
313 – 318.
4 $
Roy, D. 2000.
Publishing House Calcutta.

. Narosa

Rubatzky, V. E. and Yamaguchi, M. 1998. #
Bandung. pp. 262.

(

+. ITB*Press.

Ruiz*Lozano J.M. and Azcon, R. 2000. Symbiotic efficiency and infectivity of an
autochthonous arbuscular mycorrhizal
from saline soils and
under salinity.
, 10 : 137 – 143.
Ruíz*Lozano, J.M., Porcel, R. and Aroca, R. 2006. Does the enhanced tolerance
of arbuscular mycorrhizal plants to water deficit involve modulation of
drought*induced plant genes? ' )
& 171 : 693 – 698.
Ruiz*Lozano, J.M. 2003. Arbuscular mycorrhizal symbiosis and alleviation of
osmotic stress: new perspectives for molecular studies.
, 13 :
309 – 317.
Sabater, B. and Rodriquez, M. 1978. Control of chlorophyll degradation in
detached leaves of barley and oat through effect of kinetin on
chlorophyllase levels.
, 43 : 27 – 276.
Salisbury, F. B. dan Ross,
Bandung.

C. W. 1992. ,

*

. Penerbit ITB.

Sannazzaro, A.I, Echeverria, M., Alberto, E.O., Ruiz, O.A. and Mene´ndez,
A.B. 2007. Modulation of polyamine balance in 1
by salinity
and arbuscular mycorrhiza.
, 45: 39 –
46.

Universitas Sumatera Utara

245

Santosa, D.A. 1990. ,
!
!
!
!
. Materi
Kursus MVA 29 Januari – 10 Februari 1990. Fakultas Pertanian IPB.
Bogor.
Santoso, T.J., Abdullah, B., Carsono, N., Apriana, A., Sisharmini, A. dan
Trijatmiko, K. R. 2012. Sinergisitas dan stabilitas ekspresi gen OsERF1
dan OsDREB1A pada progeny silangan Ciheran X Nipponbare transgenik
untuk toleransi terhadap salinitas tinggi. Prosiding InSiNas 2012.
Sasli, I. 2004.

!

!
!

!
9 .$:
!
! !
. Institut Pertanian

Bogor.
Schalau, J. 2002.
. Agricultur and Natural Resources Arizona
Cooperative Extention. Yavapai Country.
Schenck, N. C. and Y. Perez. 1990.
. Synergistic Publications, Gainesville.

.$

Sembiring, H. dan Gani. A. 2005. Adaptasi varietas padi pada tanah terkena
tsunami. http://io.ppi.jepang.org.
Setiadi, Y. , Budi, S.W. dan Ahmad. 1992.
0 !1
!
*
. Departemen Pendidikan dan Kebudayaan Dirjen Pendidikan
Tinggi Pusat Antar Universitas Bioteknologi, IPB. Bogor.
Sevengor, S., Yasar, F., Kusvuran, S. dan Ellialtioglu, S. 2011. The effect of salt
stress on growth, chlorophyll content, lipid peroxidation and antioxidative
enzymes of pumpkin seedling. $
$
,
6 (21) : 4920*4924
Shabala, S., Hariadi, Y. and Jacobsen, E. 2013. Genotypic difference in salinity
tolerance in quinoa is determined by differential control of xylem Na+
loading and stomatal density.
, 170 : 906–914.
Shao, G.H., Song, J.Z. and Liu, H.L. 1986. Preliminary studies on the evaluation
of salt tolerance in soybean varieties. $ $
#
, 6 : 30 * 35.
Shao, H.B., Chu, L.Y., Zhao, H.L. and Kang, C. 2008. Primary antioxidant free
radical scavenging and redox signalling pathways in higher plant cells.
#
, 4 : 8–14.
Sharifi, M., Ghorbanli, M. and Ebrahimzadeh, H. 2007. Improved growth of
salinity*stresses soybean after inoculation with salt pre*treated mycorrhizal
fungi.
, 164 : 1114 – 1151.
Sheng, M., Tang, M., Chan, H., Yang, B., Zhang, F. and Huang, Y. 2008.
Influence of arbuscular mycorrhizae on photosynthesis and water status of
maize plants under salt stress.
, 18: 287–296.

Universitas Sumatera Utara

246

Shinozaki, K. and Yamaguchi*Shinozaki, K. 1997. Gene expression and signal
transduction in water stress response.
, 115: 327*334.
Shokri, S. dan B. Maadi. 2009. Effect of arbuscular mycorrhiza fungus on the
mineral nutrition and yield of *
plants under salinity
stress.
$
, 8 : 79*83.
Siguenza, C., Espejel, I. and Allen, E.B. 1996. Seasonality of mycorrhizae in
coastal sand dunes of Baja California.
, 6 : 151 – 157.
Silvente, S., Sobolev, A.P. and Lara, M. 2012. Metabolite adjustments in drought
tolerant and sensitive soybean genotypes in response to water stress. 1 #
2 , 7 : e38554
Simatupang, P., Marwoto, dan Swastika, D.K.S. 2005. Pengembangan kedelai
dan kebijakan penelitian di Indonesia. Lokakarya Pengembangan Kedelai
di Lahan Suboptimal. BALITKABI Malang.
Sitinjak, E.N., Siregar, L.A.M. dan Rosmayati. 2012. Respons pertumbuhan dan
produksi kedelai (
(L.) Merril) varietas Grobogan dengan
pemberian asam askorbat pada tanah salin. Prosiding Seminar dan
Kongres Nasional Sumber Daya Genetik Medan, 12*14 Desember 2012
Sitompul, S.M., Nur, B., Arumingtyas dan Laras, E. 2009. Rekayasa varietas
unggul kedelai (
(L.) Merr.) dengan pendekatan fisiologi
molekuler . Fakultas Teknologi Pertanian Universitas Brawijaya. pp. 77.
Slatyer, R. O. and Barrs, H. D. 1965. Modifications to the relative turgidity
technique with notes on its significance as an index of the internal water
status of leaves. In :
%
. ed. F. E.
Eckardt. UNESCO Paris. p. 331 *341.
Slinger, D. and Tenison, K. 2005. #
% '#/
"
. An initiative of the Southern Salt Action
Team, NSW Department of Primary Industries.
Smirnoff, N. 2000. Ascorbate biosynthesis and function in photoprotection.
*
#
1
355 : 1455 –
1464
Smith, S. E. and Read, D. J. 1997.
California USA 35 p.

#

. Akademic Press.

Staal M., Maathuis, F.J.M., Elzenga, J.T., . Overbeek, J.H.M and Prins,
H.B.A. 1991. Na+/H+ antiport activity in tonoplast vesicles from roots of
the salt*tolerant
and the salt*sensitive
.
, 82 : 179–184.
Steel, R.G.D. dan Torrie, J.H. 1993.
#
! #
!
!. Terjemahan Ir. Bambang Sumantri. IPB Press.
Bogor.

Universitas Sumatera Utara

247

Sudarmi. 2013. Peranan biologi molekuler pada pemuliaan tanaman.
84 (XXV) : 75 – 80.

,

Sun, W., Deng, D., Yang, L., Zheng, X., Yu, J., Pan, H. and Zhuge, Q. 2013.
Overexpression of the chloride channel gene (GmCLC1) from soybean
increases salt tolerance in transgenic
×
‘Nanlin895’.
2
, 6 (5) : 347*354
Sun, Y.X., Wang, D., Bai, Y.L., Wang, N.N. and Wang, Y. 2006. Studies on the
overexpression of the soybean GmNHX1 in 1
: the
+
reduced Na level is the basis of the increased salt tolerance. "
#
& 51 : 1306–1315.
Suparjana, T. B. dan Risyanto, S. 1997. Studi banding struktur anatomi daun
jagung varietas arjuna dan varietas harapan di Purwokerto.
, 7 : 1*
6.
Susanto, G.W.A. dan Adie, M.M. 2004
!
! . Teknologi Inovatif Agribisnis Kacang*
Kacangan dan Umbi*Umbian Untuk Mendukung Ketahanan Pangan.
Pusat Penelitian dan Pengembangan Tanaman Pangan : 302*307
Sutjahjo, S.H. 2006. Seleksi
pada empat genotipe jagung.

untuk ketenggangan terhadap aluminium
$! $
, 9 (2) : 61*66.

Sutoro, A. Bari, Subandi dan Yahya, S. 2006. Parameter genetik jagung populasi
Bisma pada pemupukan berbeda. Ragam aditif*dominan bobot biji
jagung.
$
& 2 (2 ) : 60 * 67.
Swasono, F.D.H. 2012. Peran ABA dan prolina dalam mekanisme adaptasi
tanaman bawang merah terhadap cekaman kekeringan di tanah pasir
pantai.
$ #
, 4 (5) : 71*78.
Thanna, E. and Nawar, A. 1994. Salinity and mycorrhizal association in relation
to carbohydrate status, leaf chlorophyll and activity of peroxidase and
polyphenol oxidase enzymes in sour orange seedlings. $
$
, 39: 263–280.
Tian, C.Y, Feng, G., Li, X.L., and Zhang, F.S. 2004. Different effects of
arbuscular mycorrhizal fungal isolates from saline or non*saline on salinity
tolerance of plants. $
#
, 26 : 143–148.
Turan, S., Cornish, K. and Kumar, S. 2012. Salinity tolerance in plants: Breeding
and genetic engineering. $
"
#
, 6 (9) : 1337*
1348
Uddin, K. M., Juraimi, A. S., Ismail, M. R., Othman, R. and Rahim, A. A. 2011.
Relative salinity tolerance of warm season turf grass species.
, 32: 309–312.

Universitas Sumatera Utara

248

Utama, M.Z.H., Haryoko, W., Munir, R. dan Sunadi. 2009. Penapisan varietas
padi toleran salinitas pada lahan rawa di Kabupaten Pesisir Selatan.
$
, 37 (2) : 101 – 106.
Vaast, P.H. and Zasoski, R.J. 1991. Effect of nitrogen sources and mycorrhizal
inoculation wih different species on growth and nutrient composition of
young Arabica seedlings. " < "
, 35 : 121*128 .
Valencia, R., Chen, P., Ishibashi, T. and Conatser, M.. 2008. A Rapid and
effective methode for screening salt tolerance in soybean. "
#
,
48 : 1773*1779
Walton, E.F., Podivvinsky, E., Wu, R.M., Reynolds, P.H.S. and Young, L.W.
2002. Regulation of proline biosynthesis in kiwifruit buds with and
without hydrogen cyanamide treatment.
, 102 (2) :
171 – 178.
Wang F.Y., Liu, R.J., Lin, X.G. and Zhou, J.M. 2004. Arbuscular mycorrhizal
status of wild plants in saline*alkaline soils of the Yellow River Delta.
, 14 : 133–13.
Wang, S., Wan, C. and Wang, Y. 2004. The characteristics of Naþ, Kþ and free
proline distribution in several drought*resistance plants of the Alxa Desert,
China.
$
& 56 : 525–539.
Wolucka, B. A., Goossens, A. and Inze, D.2005. Methyl jasmonate stimulates
the de novo biosynthesis of vitamin C in plant cell suspensions.
, 56 : 2527*2538.
Yamato, M., Ikeda, S. and Iwase, K. 2008. Community of arbuscular mycorrhizal
fungi in coastal vegetation on Okinawa Island and effect of the isolated
fungi on growth of sorghum under salt*treated conditions.
, 18
: 241–249.
Yoshiba, Y., Kiyoue, T., Nakashima, K., Yamaguchi*Shinozaki, K., and
Shinozaki, K. 1997. Regulation of levels of proline as an osmolyte in
plants under water stress.
"
, 38 : 1095*1102.
Younesi, O. and Moradi, A. 2013. The effects of arbuscular mycorrhizal fungi
inoculation on reactive oxyradical scavenging system of soybean (
) nodules under salt stress condition. $
"
#
, 78 (4) : 321*326.
Yu, Q. and Rengel, . Z. 1999. Drought and salinity differentially influence
activities of superoxide dismutase in narrow*leafed lupins.
#
,
142 : 1–11.
Yuniati, R. 2004. Penapisan galur kedelai (
terhadap NaCl untuk penanaman di lahan salin.
24.

(L.) Merrill) toleran
!
#
, 8 (1) : 21 –

Universitas Sumatera Utara

249

Ihang, G., Chen, M., Li, L., Xu, Z., Chen, X., Guo, J. and Ma, Y. 2009.
Overexpression of the soybean GmERF3 gene, an AP2/ERF type
transcription factor for increased tolerances to salt, drought, and diseases
in transgenic tobacco.
, 60 (13) : 3781–
3796.
Zhang, S., Weng, J., Pan, J., Tu, T., Yao, S. and Xu, C. 2003. Study on the
photogeneration of superoxide radicals in photosystem II with EPR spin
trapping techniques.
, 75 : 41–48.
Zhu, X.C., Song, F.B., Liu, S.Q., Liu, T.D. and Zhou, X. 2012. Arbuscular
mycorrhizae improves photosynthesis and water status of 3
L.
under drought stress.
#
& 58 (4) : 186–191.
Zou, Y.N. and Wu, Q.S. 2011. Efficiencies of five arbuscular mycorrhizal fungi
in alleviating salt stress of trifoliate orange. $
, 13 : 991–995.
Zuccarini, P. 2007. Mycorrhizal infection ameliorates chlorophyll content and
nutrient uptake of lettuce exposed to saline irrigation
& #
, 53 : 283 – 289.
Zuccarini, P. and Okurowska, P. 2008. Effects of mycorrhizal colonization and
fertilization on growth and photosynthesis of sweet basil under salt stress.
'
, 31: 497 – 513.

Universitas Sumatera Utara