TLS Online TPP Program

#Question id: 18885


The total magnification of a microscope is calculated by:

#Unit 13. Methods in Biology
  1. Multiplication of the objective lens and condenser lens magnification power
  2. The objective lens power squared
  3. Multiplication of the objective lens and ocular lens magnification power
  4. Addition of the objective lens and ocular lens magnification powers
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TLS Online TPP Program

#Question id: 27679

#Unit 1. Molecules and their Interaction Relevant to Biology

Which of the following is a computational technique that attempts to determine the unknown structure of a protein

TLS Online TPP Program

#Question id: 27680

#Unit 1. Molecules and their Interaction Relevant to Biology

Prediction of the structure of a protein based only on its chemical and physical properties is done by

TLS Online TPP Program

#Question id: 27681

#Unit 1. Molecules and their Interaction Relevant to Biology

The structural database for the Structural Classification of Proteins is

TLS Online TPP Program

#Question id: 7289

#Unit 1. Molecules and their Interaction Relevant to Biology

The following scheme shows the flowering status of a plant species and the photoperiodism. Which of the following conclusions is most appropriate?

TLS Online TPP Program

#Question id: 68

#Unit 1. Molecules and their Interaction Relevant to Biology

Match the following functional groups given in column I with their respective representatives given in column II.

COLUMN ICOLUMN II
1. Anhydridea. RCOOR
2. Etherb. ROCOCH3
3. Acetylc. ROR
4. Amidod. RCOOCOR
5. Estere. RCONH2

TLS Online TPP Program

#Question id: 73

#Unit 1. Molecules and their Interaction Relevant to Biology

Match the Variation of Reaction Spontaneity (Sign of ΔG) given in Column I with the Signs of ΔH and ΔS given in column II.

COLUMN I

COLUMN II

 

 

 

  ΔH

ΔS

ΔG = ΔH – TΔS

1.

+

a. The reaction is both enthalpically and entropically opposed. It is nonspontaneous (endergonic) at all temperatures.

2.

 −

− 

b. The reaction is enthalpically opposed (endothermic) but entropically favored. It is spontaneous only at temperatures above T = ΔH/ΔS.

3.

+

+

c. The reaction is enthalpically favored but entropically opposed. It is spontaneous only at temperatures below T = ΔH/ΔS.

4.

+

d. The reaction is both enthalpically favored (exothermic) and entropically favored. It is spontaneous (exergonic) at all temperatures.