Organic Compounds - tanyabshank
... Because there are SO MANY C-H bonds in fatty acids, lipids are VERY efficient ways of storing energy. ...
... Because there are SO MANY C-H bonds in fatty acids, lipids are VERY efficient ways of storing energy. ...
Early Earth and the Origin of Life
... The first cells may have originated by chemical evolution on a young Earth. Though life today arises by biogenesis, the very first cells may have been products of a prebiotic chemistry. ...
... The first cells may have originated by chemical evolution on a young Earth. Though life today arises by biogenesis, the very first cells may have been products of a prebiotic chemistry. ...
Biomolecule Discussion Guide KEY
... Biomolecule Discussion Guide KEY Instructions: Fill in this guide as your teacher leads you through a discussion on biomolecules. I. What is a Biomolecule? A biomolecule is an organic molecule produced by living organisms and made mostly of carbon, hydrogen, and oxygen. II. Organic molecules and Ino ...
... Biomolecule Discussion Guide KEY Instructions: Fill in this guide as your teacher leads you through a discussion on biomolecules. I. What is a Biomolecule? A biomolecule is an organic molecule produced by living organisms and made mostly of carbon, hydrogen, and oxygen. II. Organic molecules and Ino ...
• Microbial Metabolism • What is metabolism? • All chemical
... malic acid (4) oxaloacetic acid (4) Krebs cycle animation ...
... malic acid (4) oxaloacetic acid (4) Krebs cycle animation ...
2.3: Carbon-Based Molecules
... – An organism may have thousands of different enzymes – Each is specific to one chemical reaction ...
... – An organism may have thousands of different enzymes – Each is specific to one chemical reaction ...
Phase 2 - Spokane Public Schools
... Photosynthesis: A Review ● The energy entering chloroplasts as sunlight gets stored as chemical energy in organic compounds ● Sugar made in the chloroplasts supplies chemical energy and carbon skeletons to synthesize the organic molecules of cells ● In addition to food production, photosynthesis pro ...
... Photosynthesis: A Review ● The energy entering chloroplasts as sunlight gets stored as chemical energy in organic compounds ● Sugar made in the chloroplasts supplies chemical energy and carbon skeletons to synthesize the organic molecules of cells ● In addition to food production, photosynthesis pro ...
ST110 Chemistry, Cellular Structure, and Function_BB
... and the proteins into amino acids. These molecules are then transported through the bloodstream to the cells, where they are either absorbed for immediate use or sent on to the final stage of metabolism in which they are reacted with oxygen to release their stored energy. ...
... and the proteins into amino acids. These molecules are then transported through the bloodstream to the cells, where they are either absorbed for immediate use or sent on to the final stage of metabolism in which they are reacted with oxygen to release their stored energy. ...
Taxonomy and Classification Notes * Taxonomy: The science of
... (photosynthesis), and lack the power of locomotion. Plants are divided into Divisions instead of Phylums. Photosynthesis – Plants make sugar from sunlight. Light energy is turned into chemical energy (sugars – carbon based). 6CO2 + 6H2O + light energy = C6H12O6 + 6O2 Photosynthesis Produces sugars f ...
... (photosynthesis), and lack the power of locomotion. Plants are divided into Divisions instead of Phylums. Photosynthesis – Plants make sugar from sunlight. Light energy is turned into chemical energy (sugars – carbon based). 6CO2 + 6H2O + light energy = C6H12O6 + 6O2 Photosynthesis Produces sugars f ...
Basic Background Review: Acid-Base , Redox, and Stable Isotopes
... IE actual carbon Std Ratio 12C/ 13C = already a BIG excess Boils down to measuring absolute differences in a small populations of atoms of the Heavy Isotope. (Analogy: being able to measure relative differences in distance of a cm or two, accurately and reproducibly of the scale of here to ...
... IE actual carbon Std Ratio 12C/ 13C = already a BIG excess Boils down to measuring absolute differences in a small populations of atoms of the Heavy Isotope. (Analogy: being able to measure relative differences in distance of a cm or two, accurately and reproducibly of the scale of here to ...
Macromolecules - Mr. Holmes` Biology
... 1 Carbon to 2 Hydrogen to 1 Oxygen = 1:2:1 • Remember this shape? • It is a carbohydrate monomer called glucose Glucose= C6H12O6 (KNOW FOR TEST) ...
... 1 Carbon to 2 Hydrogen to 1 Oxygen = 1:2:1 • Remember this shape? • It is a carbohydrate monomer called glucose Glucose= C6H12O6 (KNOW FOR TEST) ...
African Violet
... In terms of popularity, these plants are first in any list of favorite flowering plants. No other plant equals Saintpaulia in its ability to thrive and bloom indoors for months on end. Rosettes of velvety leaves on short stems surround clusters of flowers in white, shades of pink, red, violet, purpl ...
... In terms of popularity, these plants are first in any list of favorite flowering plants. No other plant equals Saintpaulia in its ability to thrive and bloom indoors for months on end. Rosettes of velvety leaves on short stems surround clusters of flowers in white, shades of pink, red, violet, purpl ...
Ecology Distribution and Adaptations of Organisms
... Effects temperature and water conditions for many organisms. u May carry abrasive particles that limit plant growth by killing the SAM areas. u ...
... Effects temperature and water conditions for many organisms. u May carry abrasive particles that limit plant growth by killing the SAM areas. u ...
Producers
... for moving • Chaetocerus: have setae for joining other chaetocera to form chains or sheets of colonies ...
... for moving • Chaetocerus: have setae for joining other chaetocera to form chains or sheets of colonies ...
SADDLEBACK COLLEGE BIOLOGY 20 EXAMINATION 2 STUDY
... metabolism? Give an example of where each of these reactions takes place in your body. 2. Explain the difference between oxidation and reduction using either the cellular respiration or photosynthesis equation as an example and how these reactions are linked together. 3. How can you use the followin ...
... metabolism? Give an example of where each of these reactions takes place in your body. 2. Explain the difference between oxidation and reduction using either the cellular respiration or photosynthesis equation as an example and how these reactions are linked together. 3. How can you use the followin ...
Chapter 3 Chemistry of Life Modern Biology Textbook Holt
... Describe how the breaking down of ATP supplies energy to drive chemical reactions. ...
... Describe how the breaking down of ATP supplies energy to drive chemical reactions. ...
File
... • Each group should have 4 people and 20 cards. Split the cards up so each person has 5. • On your own piece of paper, write out your 5 chemical equations and balance them. • Then, once all equations are balanced, look at the 20 as a group. You need to split the 20 cards up in to 5 different react ...
... • Each group should have 4 people and 20 cards. Split the cards up so each person has 5. • On your own piece of paper, write out your 5 chemical equations and balance them. • Then, once all equations are balanced, look at the 20 as a group. You need to split the 20 cards up in to 5 different react ...
Chapter Twenty
... 3. Plants are members of the ____________________________________ 4. Plants are ____________________________________ that have cell walls made of ___________________. They develop from multicellular embryos and carry out photosynthesis using the green pigments, chlorophyll a and b. 5. Plants include ...
... 3. Plants are members of the ____________________________________ 4. Plants are ____________________________________ that have cell walls made of ___________________. They develop from multicellular embryos and carry out photosynthesis using the green pigments, chlorophyll a and b. 5. Plants include ...
All About Plants
... • Cells that lie between the dermal and vascular tissue. • In leaves these cells are packed with chloroplasts and are the site of photosynthesis. ...
... • Cells that lie between the dermal and vascular tissue. • In leaves these cells are packed with chloroplasts and are the site of photosynthesis. ...
Chapter 21
... • Cyanobacteria in genera Prochloron, Prochlorococcus, and Prochlorothrix – distinguished by presence of chlorophyll a and b and lack of phycobilins • are the only procaryotes to possess chlorophyll b –makes them candidates as ancestors of endosymbionts that give rise to chloroplasts ...
... • Cyanobacteria in genera Prochloron, Prochlorococcus, and Prochlorothrix – distinguished by presence of chlorophyll a and b and lack of phycobilins • are the only procaryotes to possess chlorophyll b –makes them candidates as ancestors of endosymbionts that give rise to chloroplasts ...
Chapters 4 and 5 Mrs. Svencer CP Biology 4.1 Life Requires About
... All amino acids consist of a central carbon bonded to an amino group, a carboxyl group, and a hydrogen atom. The fourth bond is with a unique side group. The differences in side groups convey different properties to each amino acid. ...
... All amino acids consist of a central carbon bonded to an amino group, a carboxyl group, and a hydrogen atom. The fourth bond is with a unique side group. The differences in side groups convey different properties to each amino acid. ...
9693 MARINE SCIENCE MARK SCHEME for the May/June 2014 series
... relationship between two / different species ; (where) both benefit / description / idea of ...
... relationship between two / different species ; (where) both benefit / description / idea of ...
Carbon compounds class web14
... Organic molecules • Organic molecules all contain Carbon. • Usually bonded to the elements N, H, O. • CHNOPS are the 6 most common elements in organisms. ...
... Organic molecules • Organic molecules all contain Carbon. • Usually bonded to the elements N, H, O. • CHNOPS are the 6 most common elements in organisms. ...
Photosynthesis
Photosynthesis is a process used by plants and other organisms to convert light energy, normally from the Sun, into chemical energy that can be later released to fuel the organisms' activities. This chemical energy is stored in carbohydrate molecules, such as sugars, which are synthesized from carbon dioxide and water – hence the name photosynthesis, from the Greek φῶς, phōs, ""light"", and σύνθεσις, synthesis, ""putting together"". In most cases, oxygen is also released as a waste product. Most plants, most algae, and cyanobacteria perform photosynthesis; such organisms are called photoautotrophs. Photosynthesis maintains atmospheric oxygen levels and supplies all of the organic compounds and most of the energy necessary for life on Earth.Although photosynthesis is performed differently by different species, the process always begins when energy from light is absorbed by proteins called reaction centres that contain green chlorophyll pigments. In plants, these proteins are held inside organelles called chloroplasts, which are most abundant in leaf cells, while in bacteria they are embedded in the plasma membrane. In these light-dependent reactions, some energy is used to strip electrons from suitable substances, such as water, producing oxygen gas. Furthermore, two further compounds are generated: reduced nicotinamide adenine dinucleotide phosphate (NADPH) and adenosine triphosphate (ATP), the ""energy currency"" of cells.In plants, algae and cyanobacteria, sugars are produced by a subsequent sequence of light-independent reactions called the Calvin cycle, but some bacteria use different mechanisms, such as the reverse Krebs cycle. In the Calvin cycle, atmospheric carbon dioxide is incorporated into already existing organic carbon compounds, such as ribulose bisphosphate (RuBP). Using the ATP and NADPH produced by the light-dependent reactions, the resulting compounds are then reduced and removed to form further carbohydrates, such as glucose.The first photosynthetic organisms probably evolved early in the evolutionary history of life and most likely used reducing agents, such as hydrogen or hydrogen sulfide, as sources of electrons, rather than water. Cyanobacteria appeared later; the excess oxygen they produced contributed to the oxygen catastrophe, which rendered the evolution of complex life possible. Today, the average rate of energy capture by photosynthesis globally is approximately 130 terawatts, which is about three times the current power consumption of human civilization.Photosynthetic organisms also convert around 100–115 thousand million metric tonnes of carbon into biomass per year.