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DNA, RNA, and Protein Synthesis Graphic Notes!

Rated 4.83 out of 5, based on 18 reviews
4.8 (18 ratings)
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Strankles Science
411 Followers
Grade Levels
6th - 9th
Standards
Formats Included
  • Zip
Pages
1 page
$3.50
$3.50
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Strankles Science
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What educators are saying

I love interactive notes to help supplement our curriculum and I love the students have all the relevant information in one place when it comes time to study for a test
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Description

Use these Graphic Notes to help your students keep track of the most important pieces of DNA, RNA, and Protein Synthesis:

Included in these Graphic Notes:

- Diagrams of DNA and RNA

- Definitions of DNA and RNA

- Information on Codons and Amino Acids

- How DNA and RNA code for proteins and therefore life

- Comparison of DNA vs. RNA

- The roles of mRNA and tRNA

- The five nitrogen bases

- Tricks to remember the bases and what pairs

- Mosaic style graphic organizer to keep everything straight!

Suggested uses:

- Part of an interactive notebook

- Guided notes

- Graphic Organizer

- Reviews

- Scaffolded/accommodated notes

- Guided reading

- Cooperative learning

- Mini anchor chart

Special thanks to the Painted Crow!

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Keywords: genetics, heredity, graphic organizers, sketch notes, doodle diagrams, squiggle sheets, scribble notes

Total Pages
1 page
Answer Key
Included
Teaching Duration
1 hour
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Standards

to see state-specific standards (only available in the US).
NGSSMS-LS3-1
Develop and use a model to describe why structural changes to genes (mutations) located on chromosomes may affect proteins and may result in harmful, beneficial, or neutral effects to the structure and function of the organism. Emphasis is on conceptual understanding that changes in genetic material may result in making different proteins. Assessment does not include specific changes at the molecular level, mechanisms for protein synthesis, or specific types of mutations.
NGSSMS-LS3-2
Develop and use a model to describe why asexual reproduction results in offspring with identical genetic information and sexual reproduction results in offspring with genetic variation. Emphasis is on using models such as Punnett squares, diagrams, and simulations to describe the cause and effect relationship of gene transmission from parent(s) to offspring and resulting genetic variation.

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