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[A]: Antitranspirants are material appli...

[A]: Antitranspirants are material applied to plants for retarding transpiration.
[R]: Abscisic acid and phe_nyl mercuric ac- etate are not antitranspirants.

A

If both A and R are true and R is the correct explanation of A

B

If both A and R are true but R is not the correct explanation of A

C

If A is true and R is false

D

If both A and R are false

Text Solution

Verified by Experts

The correct Answer is:
C
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[A]: Antitranspirants are used to retard tran- spiration. [R]: AbA and PMA are not antitranspirants

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Read the passage given below and answer the question: Biopolymers are polymers that are generated from renewable natural sources, are often biodegradable and nontoxic. They can be produced by biological systems (i.e. microorganisms, plants and animals), or chemically synthesized from biological materials (e.g., sugars, starch, natural fats or oils, etc.). Two strategies are applied in converting these raw materials into biodegradable polymers: extraction of the native polymer from a plant or animal tissue, and a chemical or biotechnological route of monomer polymerization. Biodegradable biopolymers (BDP) are an alternative to petroleum-based polymers (traditional plastics). Some BDP degrade in only a few weeks, while the degradation of others takes several months. In principle the properties relevant for application as well as biodegradability are determined by the molecular structure. According to the American Society for Testing and Materials, biopolymers are degradable polymers in which degradation results from the action of naturally occurring microorganisms such as bacteria, fungi and algae. Polylactic acid (PLA) is an example of biopolymer. It is a thermoplastic polyester. Generally, there are two major routes to produce polylactic acid from the lactic acid ( CH_(3)CH(OH) COOH ) monomer. The first route involves condensation-water removal by the use of solvent under high vacuum and temperature. This approach produces a low to intermediate molar mass polymer. An alternative method is to remove water under milder conditions, without solvent, to produce a cyclic intermediate dimer, referred to as lactide. This intermediate is readily purified by vacuum distillation. Ring opening polymerization of the dimer is accomplished under heat, again without the need for solvent. By controlling the purity of the dimer it is possible to produce a wide range of molar masses .PLA is a good material for production of clothing, carpet tiles, interior and outdoor furnishing, geotextiles, bags, filtration systems, etc. The primary biodegradability of PLA was tested using hydrolysis tests at various composting temperatures and pH. It was demonstrated that composting is a useful method for PLA biodegradation. The degradation rate is very slow in ambient temperatures. A 2017 study found that at 25^(@)C in sea water, PLA showed no degradation over a year. As a result, it is poorly degraded in landfills and household composts, but is effectively digested in hotter industrial composts. (source: Flieger, M., Kantorová, M., Prell, A., Rezanka, T., & Votruba, J. (2003). Biodegradable plastics from renewable sources. Folia Microbiologica, 48(1), 27 44. doi:10.1007/bf02931273) In the question, a statement of assertion followed by a statement of reason is given. Choose the correct answer out of the following choices on the basis of the above passage. Assertion: Biodegradable polymers degrade in few weeks. Reason: Microorganisms bring about degradation of biopolymers.

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Read the passage given below and answer the question: Biopolymers are polymers that are generated from renewable natural sources, are often biodegradable and nontoxic. They can be produced by biological systems (i.e. microorganisms, plants and animals), or chemically synthesized from biological materials (e.g., sugars, starch, natural fats or oils, etc.). Two strategies are applied in converting these raw materials into biodegradable polymers: extraction of the native polymer from a plant or animal tissue, and a chemical or biotechnological route of monomer polymerization. Biodegradable biopolymers (BDP) are an alternative to petroleum-based polymers (traditional plastics). Some BDP degrade in only a few weeks, while the degradation of others takes several months. In principle the properties relevant for application as well as biodegradability are determined by the molecular structure. According to the American Society for Testing and Materials, biopolymers are degradable polymers in which degradation results from the action of naturally occurring microorganisms such as bacteria, fungi and algae. Polylactic acid (PLA) is an example of biopolymer. It is a thermoplastic polyester. Generally, there are two major routes to produce polylactic acid from the lactic acid (CH_(3)CH(OH) COOH) monomer. The first route involves condensation-water removal by the use of solvent under high vacuum and temperature. This approach produces a low to intermediate molar mass polymer. An alternative method is to remove water under milder conditions, without solvent, to produce a cyclic intermediate dimer, referred to as lactide. This intermediate is readily purified by vacuum distillation. Ring opening polymerization of the dimer is accomplished under heat, again without the need for solvent. By controlling the purity of the dimer it is possible to produce a wide range of molar masses .PLA is a good material for production of clothing, carpet tiles, interior and outdoor furnishing, geotextiles, bags, filtration systems, etc. The primary biodegradability of PLA was tested using hydrolysis tests at various composting temperatures and pH. It was demonstrated that composting is a useful method for PLA biodegradation. The degradation rate is very slow in ambient temperatures. A 2017 study found that at 25^(@)C in sea water, PLA showed no degradation over a year. As a result, it is poorly degraded in landfills and household composts, but is effectively digested in hotter industrial composts. (source: Flieger, M., Kantorová, M., Prell, A., Rezanka, T., & Votruba, J. (2003). Biodegradable plastics from renewable sources. Folia Microbiologica, 48(1), 27 44. doi:10.1007/bf02931273) In the question, a statement of assertion followed by a statement of reason is given. Choose the correct answer out of the following choices on the basis of the above passage. Assertion: The degradation of PLA is very slow in ambient temperature. Reason: PLA is a thermoplastic.

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Find out correct options : {:(," I",," II",," III"),(a,"Foolish Plant",p,"Volatile",x,"Induces"),(b,"Induces senescence",q,"Abscisic acid",y,"Ripens fruit"),(,,r,"Gibberella",z,"Usually sterile plant"):}

TRUEMAN BIOLOGY-Plant Physiology -ASSERTION AND REASON
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  2. [A]: The evolution of molecular oxygen is con- cerned with photosystem...

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  3. [A]: Antitranspirants are material applied to plants for retarding tra...

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  4. Assertion. Calcium deficiency symptoms first appear in the apical regi...

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  5. Assertion: Deficiency of sulpur causes chlorosis in plants Reason : ...

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  6. Assertion : Water and mineral uptake by root hairs from the soil occur...

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  7. [A]: Stomata open when guard cells have more H^+ . [R]: Increased K^+...

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  8. [A]: In washed beet root cylinders, betacyanin pigment does not come o...

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  9. [A]: Rate of transpiration is directly propor- tional to relative humi...

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  10. [A]: Root cells have lower OP than leaf cells. [R]: Root cells have...

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  11. [A]: Root pressure is largely responsible for ascent of sap in harbace...

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  12. [A]: The nodulated bacteria fix nitrogen in the presence of leg Hb. ...

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  13. [A]: Plants growing under trees show less photosynthesis. [R]: Gree...

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  14. [A]: Chlorophylls usually show red fluores- cence though they absorb b...

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  15. Asserion : Long distance flows of photoassimilates in plants occurs t...

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  16. [A]: Rhoea discolor leaves contain anthocya-nin in epidermal cells [...

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  17. [A]: Ringing/Girdling experiments involved removal of all tissues outs...

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  18. [A]: Action spectra for photosynthesis help to identify the pigments i...

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  19. [A] : C3 & C4 cycle can not occur in the same plant [R] : C3 cycle ...

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  20. [A]: Photosynthesis is an oxidation reduction process. [R]: Electron...

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