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1.
Patitucci A survey of small vertebrates in a central Georgia Piedmont forested habitat // Ga J. Sci., 2013. Vol. 71, N 2.-С.108-117

2.
Beaumont Andy R. Allozyme genetics of Mytilus edulis subjected to copper and nutritive stress // J. Mar. Biol. Assoc. UK, 1996. Vol. 76, N 4.-С.1061-1071

3.
Beaumont Andy R. Allozyme genetics of Mytilus edulis subjected to copper and nutritive stress // J. Mar. Biol. Assoc. UK, 1996. Vol. 76, N 4.-С.1061-1071

4.
Amyloid 'бета'-peptide-binding alcohol dehydrogenase is a component of the cellular response to nutritional stress // J. Biol. Chem., 2000. Vol. 275, N 35.-С.27100-27109

5.
Newmark Harold L. Colonic hyperplasia and hyperproliferation induced by a nutritional stress diet with four components of western-style diet // J. Nat. Cancer Inst., 1990. Vol. 82, N 6.-С.491-496

6.
DNA array analysis as a tool to reveal Synechocystis gene expression patterns // 5 European Workshop on the Molecular Biology of Cyanobacteria, Stockholm, June 9-12, 2002. -Stockholm, 2002.-С.134

7.
Wright Barbara E. Does selective gene activation direct evolution? // FEBS Lett., 1997. Vol. 402, N 1.-С.4-8

8.
Rangel Drauzio E.N. Effects of physical and nutritional stress conditions during mycelial growth on conidial germination speed, adhesion to host cuticle, and virulence of Metarhizium anisopliae, an entomopathogenic fungus // Mycol. Res., 2008. Vol. 112, N 11.-С.1355-1361

9.
du Energy reallocation during and after periods of nutritional stress in Steller sea lions: Low-quality diet reduces capacity for physiological adjustments // Physiol. and Biochem. Zool., 2009. Vol. 82, N 5.-С.516-530

10.
Rangel Drauzio E.N. Evaluating physical and nutritional stress during mycelial growth as inducers of tolerance to heat and UV-B radiation in Metarhizium anisopliae conidia // Mycol. Res., 2008. Vol. 112, N 11.-С.1362-1372

11.
Ren S.-Y. Evaluation of nutritional and physical stress conditions during vegetative growth on conidial production and germination in Ophiocordyceps sinensis // FEMS Microbiol. Lett., 2013. Vol. 346, N 1.-С.29-35

12.
Expresion diferencial de genes en tilapia Oreochromis niloticus (L., 1758) bajo estres alimentario // Bol. Inst. esp. oceanogr., 2005. Vol. 21, N 1-4.-С.261-270

13.
Walzer Food stress causes sex-specific maternal effects in mites // J. Exp. Biol., 2015. Vol. 218, N 16.-С.2603-2609

14.
Cotton S. Heightened condition dependence is not a general feature of male eyespan in stalk-eyed flies (Diptera: Diopsidae) // J. Evol. Biol., 2004. Vol. 17, N 6.-С.1310-1316

15.
Cotton S. Heightened condition dependence is not a general feature of male eyespan in stalk-eyed flies (Diptera: Diopsidae) // J. Evol. Biol., 2004. Vol. 17, N 6.-С.1310-1316

16.
Herbert E.W.(Jr.) Influence of nutritional stress and the age of adults on the morphometrics of honey bees (Apis mellifera L.) // Apidologie, 1988. Vol. 19, N 3.-С.221-229

17.
Kehl Larval starvation reduces responsiveness to feeding stimuli and does not affect feeding preferences in a butterfly // J. Insect Physiol., 2012. Vol. 58, N 7.-С.1028-1035

18.
Corrales J. Lateral line depigmentation (LLD) in channel catfish, Ictalurus punctatus (Rafinesque) // J. Fish Diseases, 2009. Vol. 32, N 8.-С.705-712

19.
Life-history consequences of adaptation to larval nutritional stress in Drosophila // Evolution (USA), 2009. Vol. 63, N 9.-С.2389-2401

20.
Life-history consequences of adaptation to larval nutritional stress in Drosophila // Evolution (USA), 2009. Vol. 63, N 9.-С.2389-2401

 1-20    21-37 
 




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