FILL IN THE BLANK The codon for methionine (Met) is _____, the anticodon is _____, and the coding strand of DNA will read _____.

Answers

Answer 1
Answer:

The codon for methionine (Met) is AUG, the anticodon is UAC, and the coding strand of DNA will read ATG.

Related Questions

What are the answers ???

Answers

first one is cellular respiration and the last one is aerobic

FILL IN THE BLANK. Sensorimotor _____ is defined as behavior engaged in by infants to derive pleasure from exercising their existing sensorimotor schemas.

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The term sensorimotor play is defined as behavior engaged in by infants to derive pleasure from exercising their existing sensorimotor schemas.

Sensorimotor play is a form of play that infants engage in. In this type of play, they explore their environment using their senses, which include hearing, seeing, feeling, smelling, and tasting. Sensorimotor play allows infants to learn about the world around them by engaging in various activities that help them develop their motor skills and sensory awareness. Infants learn about the properties of objects, cause-and-effect relationships, and how to control their bodies during this type of play. For example, a baby might pick up a toy and put it in their mouth to see what it tastes like, or they might shake a rattle to see what sounds it makes. During sensorimotor play, infants are developing the cognitive and motor skills that will help them as they grow and learn more about the world around them.

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The rate of photosynthesis in an aquatic plant can be determined by the number of bubbles released from the plant. These bubbles ________.are hydrogen released when water is splitare mostly carbon dioxide released when sugars are metabolizedare water released when sugars are metabolizedare oxygen released when water is split

Answers

Option D, The number of bubbles emitted by an aquatic plant can be used to estimate its rate of photosynthesis. As water is split, oxygen is released, causing these bubbles.

The oxygen produced as a consequence of the breaking of water molecules makes up the majority of the bubbles that are generated by an aquatic plant during photosynthesis.

During the process of photosynthesis, chlorophyll pigments in the plant's cells absorb light, which sets off a sequence of chemical processes that ultimately lead to the production of energy and the reduction of carbon dioxide to sugars.

This splits the water molecules into electrons, protons, and oxygen gas, which is then released as bubbles into the surrounding water.

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The question is -

The rate of photosynthesis in an aquatic plant can be determined by the number of bubbles released from the plant. These bubbles ________.

a. are hydrogen released when water is split.

b. are mostly carbon dioxide released when sugars are metabolized.

c. are water released when sugars are metabolized.

d. are oxygen released when water is split.

true/false. for contraction of smooth muscle which of the following is true troponin is required tropomyosin is required k activates myosin light chain kinase

Answers

activates myosin light chain kinase is required for contraction of smooth muscle.

What is myosin light chain kinase?

Myosin light chain kinase (MLCK) is an enzyme that plays a key role in smooth muscle contraction. It phosphorylates the regulatory light chain (RLC) of myosin, which enables the myosin heads to bind to actin filaments, leading to the sliding of actin and myosin filaments and the contraction of the smooth muscle cell.

MLCK activity is tightly regulated in smooth muscle cells, with multiple signaling pathways, such as G protein-coupled receptors, Rho kinase, and protein kinase C, known to modulate its activity.

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Which of the following are necessary components of a model that properly accounts for the speed of nerve transmission? Select all that apply. The capacitance of the exoplasm The resistance of the axoplasm The capacitance of tho cell membrane The capacitance of the axoplasm The resistance of the cell membrane

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The necessary components of a model that properly accounts for the speed of nerve transmission are:

The resistance of the axoplasmThe capacitance of the cell membraneThe resistance of the cell membrane

Therefore, the correct options are:

The capacitance of the exoplasm (incorrect)The resistance of the axoplasm (correct)The capacitance of the cell membrane (correct)The capacitance of the axoplasm (incorrect)The resistance of the cell membrane (correct)

Electrical changes across the neuron membrane result in the passage of a nerve impulse along a neuron from one end to the other. An unstimulated neuron's membrane is polarized, meaning that the outside and inside of the membrane have different electrical charges.

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Worked examples are primarily a benefit to learners who???

lack contextualized knowledge.

lack experience with the procedure.

lack self-efficacy.

lack motivation to solve problems

Answers

B. Worked examples are primarily a benefit to learners who lack experience with the procedure.

What is meant by the term "Worked examples"?

Worked examples are step-by-step demonstrations of how to solve a problem. They provide an opportunity for learners to observe the problem-solving process and learn how to apply the same techniques to similar problems.

They are often used in mathematics and science classrooms because they are an effective way to teach complex concepts.

Worked examples can also be used to demonstrate other types of skills, such as writing or creative problem-solving. In these cases, the examples can provide a model of how to approach a problem, or how to structure an argument or essay. By studying the worked examples, learners can learn how to apply the same principles to their own work.

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Hormones are proteins that act as chemical-signaling molecules in the body. Each hormone plays a unique role in regulating processes such as growth, development, and reproduction. The diagram shows the hormones oxytocin and vasopressin.

The amino acid sequence of Oxytocin consists of six amino acids connected in sequence, in the shape of a hexagon: T-y-r, I-l-e, G-l-n, A-s-n, C-y-s, and C-y-s. Attached to one of the C-y-s amino acids is a chain of three amino acids: P-r-o, L-e-u, G-l-y. The amino acid sequence of Vasopressin consists of six amino acids connected in sequence, in the shape of a hexagon: T-y-r, P-h-e, G-l-n, A-s-n, C-y-s, and C-y-s. Attached to one of the C-y-s amino acids is a chain of three amino acids: P-r-o, A-r-g, G-l-y.

Using the diagram, which THREE sentences correctly describe the hormones?

A
The hormones perform the same function.

B
The hormones perform different functions.

C
The hormones have the same amino acids.

D
The hormones have two unique amino acids.

E
The hormones have the same number of amino acids.

F
The hormones have the same sequence of amino acids.

Answers

The hormones have the same amount of amino acids and different actions, as well as two different amino acids.

In what hormones does the hormonal signalling system function?

The gonadotropins (LH and FSH), growth hormone (GH), thyroid stimulating hormone (TSH), adrenocorticotropic hormone (ACTH), prolactin, antidiuretic hormone, and oxytocin are the hormones secreted by the pituitary gland. Thyroid gland: Located at the base of the windpipe in the neck.

What purpose does hormone signalling serve?

via promoting their production and release, mediating the synthesis of other hormones. encouraging the movement of hormones into target cells so they can exert their effects through the cells.

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Anthropometric measurements does NOT include: Select one:
a. waist circumference
b. blood pressure
c. skinfold measures
d. capillary fragility

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Anthropometric assessments are unable to detect protein and micronutrient shortages, modest changes in nutritional status, or small variations in the body fat-to-lean mass ratios.

What is meant by anthropometric measurements?Height, weight, head circumference, body mass index (BMI), waist, hip, and limb circumferences to measure adiposity, and skinfold thickness make up the basic components of anthropometry. The term "anthropometry" describes the measuring of a human being. An early physical anthropological technique, it has been applied in identification, the study of human physical variation, paleoanthropology, and other attempts to tie physical characteristics to racial and psychological features. Measurement of the human body is the subject of anthropometry. It is frequently used to assess a person's or population's nutritional status.Weight, height, the MUAC, the size of the head, and the skinfold are typical anthropometric measurements.

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B. Liverworts (Hepatophyta)
1. Observe the living green "leafy" gametophyte stage at Station A. These organisms have leaf-
like, stem-like, and root-like structures. Draw and label structures of the liverworts. Be sure
to include labels of the following items: gametophyte, n, sporophyte, 2n, rhizoides, leaf-like
structures, and thallus.
2. Use the dissecting scope and look at the sporophyte, gametophore, rhizoides, and thallus.
What do you notice? Write down some observations of each.
3. Compare the moss to the liverworts. How are they similar and how are they different?

Answers

Answer:

Explanation:

Title: Observation of Liverworts (Hepatophyta)

Objective: To observe the living green "leafy" gametophyte stage of liverworts and compare them with moss.

Hypothesis: Liverworts and moss may share some similarities in structure, but there may be significant differences between them.

Observations:

Liverworts Structures:

Gametophyte: The main plant body of the liverwort, which is haploid (n) and produces gametes.

Sporophyte: A structure that grows from the gametophyte and produces spores. It is diploid (2n).

Rhizoides: Root-like structures that anchor the gametophyte to the substrate and absorb water and nutrients.

Leaf-like structures: Flattened structures that resemble leaves but do not have true veins or stomata.

Thallus: The entire plant body of the gametophyte, which lacks true stems or roots.

Observations of different structures in liverworts:

Sporophyte: Small and inconspicuous, growing from the gametophyte.

Gametophore: The stem-like structure that supports the gametophyte and sporophyte.

Rhizoides: Thread-like structures that attach the gametophyte to the substrate and absorb water and nutrients.

Thallus: The plant body of the gametophyte that lacks true stems or roots.

Comparison between liverworts and moss:

Similarities:

Both are non-vascular plants.

Both have a haploid (n) gametophyte and a diploid (2n) sporophyte stage.

Both reproduce by spores and require water for fertilization.

Differences:

Liverworts have leaf-like structures and a thallus, while mosses have true leaves and stems.

Liverwort sporophytes are small and inconspicuous, while moss sporophytes are tall and conspicuous.

Liverworts have rhizoides, while mosses have true roots.

A scientist used detailed satellite photos of the Mississippi River Delta to create a model in the lab for experimentation. What kind of model is this?

Answers

As rivers discharge their water and material into another watercourse, including the ocean, reservoir, or another river, deltas are created.

What does the word "body" in the Bible mean?

Our devoted Heavenly Father bestows a physical body upon everyone of us. He designed it as a sanctuary for our spirits so that it could support everyone of us in our efforts to live up to the full potential of our creation.

What does a sentence body look like?

Each body paragraph begins with a topic sentence that informs readers whatever the paragraph will be about, is followed by a series of explanation sentences that examine the notion or ideas there in topic sentence while providing details and/or evidence to back up their claims.

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I was present and formed this exercise initial SHEET 5-21 Blood Agar OBSERVATIONS AND INTERPRETATIONS 1 Choose tour different colonies with a diversity of hemoly routons ncluding one stb) and fill in the table. Refer to Table 5-27, page 387. and Figure 2.4. paxta when recording and interpreting your results. Hemolysis Colony Morphology Result Source of Culture and Agar Appearance Interpretation #20 clearing around organism hemolyzes S. aureus RBC completely #17 Greening around organism partially nemolyzes RBCS growth S. typhimurium - growth ܬܘܬ ܘܘ ܚܬܡܘܢ sv hemolyees ROLS S. epidermidis #23 S. pyogenes No change in medium clearing around growth organism hemolyzes RBCs completely QUESTIONS The streak-stab technique, used to promote streptolysint activity, is preferred over incubating the plates anaerobically: a. Wily do you think this is so? b. Compare and contrast what you see as the advantages and disadvantages of each procedure. CECTIONS Differential Tests 389 Assuming that all of the organisms cultivated in this exercise came from the throats of heart is it important to cover and tape the plates? from the throats of healthy students, why Why is the streak plate preferred over the spot inoculations in this procedure? was present and performed this exercise (initials) 5-21 growth Blood Agar OBSERVATIONS AND INTERPRETATIONS 1 Choose four different colonies (with a diversity of hemolysis reactions, including one stab) and fill in the table. Refer to Table 5-27, page 387, and Figure 2.4, page 68 when recording and interpreting your results. Hemolysis Colony Morphology Result Source of Culture and Agar Appearance (a, b, y) Interpretation #20 Clearing around organism hemolyzes S. aureus RBCS completely #17 Greening around organism partially nemolyzes RBCS S. typ himurium growth orgarige do o #21 No change in hemolyees RBCS S. epidermidis medium #23 organism homolyzes Clearing around B RBCs completely S. pyogenes growth QUESTIONS mota strehtolysin activity, is preferred over incubating the plates 3. pyogenes growth B BBCs completely QUESTIONS The streak-stab technique, used to promote streptolysin activity, is preferred over incubating the plates anaerobically. a. Why do you think this is so? b. Compare and contrast what you see as the advantages and disadvantages of each procedure, Assuming that all of the organisms cultivated in this exercise came from the throats of healthy students, why is it important to cover and tape the plates? anisms es nes ae Why is the streak plate preferred over the spot inoculations in this procedure? egmatis

Answers

The streak-stab technique, used to promote streptomycin activity, is preferred over incubating the plates anaerobically. The streak plate preferred over the spot inoculations in this procedure.

Strep-produced hemolysin performed best in the anaerobic environment. Streptomycin O (SLO) is oxygen labile and streptomycin S (SLS) is oxygen stable. Streptomycin breaks down blood cells more efficiently.

Streptolysin or streak stab is a hemolytic toxin produced by the bacterium Streptococcus. Streptococcus is a facultative anaerobic bacterium, which means that it can grow in the presence or absence of air. However, it grows best under micro anaerobic or 5% CO2 conditions.

Streptococci produce two types of streptomycin - streptolysins O and S. O is oxygen unstable (it does not tolerate oxygen), while S is oxygen stable.

O is also produced when organisms are actively growing or approaching the quiescent growth phase while S is produced during the resting phase. In order to detect streptomycin produced by an organism on an agar plate, the organism must be cultured under optimal conditions. The slit method reduces the oxygen content and thus provides the conditions for maximum growth of the organism.

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which of the following molecules is a nucleotide precursor that is incorporated into the newly synthesized dna strand during normal dna replication?

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During DNA replication, the nucleotides that make up the newly synthesized DNA strand are derived from deoxynucleotide triphosphates, which consist of a deoxyribose sugar, a nitrogenous base, and three phosphate groups. The correct answer is (d) Deoxythymidine triphosphate (dTTP).

One of these nucleotides is deoxythymidine triphosphate (dTTP), which pairs with deoxyadenosine triphosphate (dATP) through hydrogen bonds to form the base pairs that hold the two strands of DNA together. Ribose is the sugar component found in RNA, but it is not a precursor for DNA synthesis. Adenosine triphosphate (ATP) is an important energy molecule in the cell, but it is not incorporated into DNA during replication.

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Full Question ;

"Which of the following molecules is a nucleotide precursor that is incorporated into the newly synthesized DNA strand during normal DNA replication: (a) Deoxyribose, (b) Ribose, (c) Adenosine triphosphate (ATP), or (d) Deoxythymidine triphosphate (dTTP)?"

Which of the following observations contributes to the explanation of why coat color in these horses is considered an example of incomplete dominance?
Coat color shows three possible phenotypes.
The phenotype of the heterozygote is an intermediate of the phenotypes of the two heterozygotes.

Answers

The observation that the phenotype of the heterozygote is an intermediate of the phenotypes of the two heterozygotes contributes to the explanation of why coat color in these horses is considered an example of incomplete dominance.

Incomplete dominance is when the offspring's phenotype is a combination of the phenotypes of both parents. Incomplete dominance occurs when the dominant allele doesn't completely mask the recessive allele in the heterozygous phenotype of the offspring.

The resulting phenotype has a blend of both alleles. Neither of the two genes dominates the other. Instead, they blend together to create an intermediate phenotype. In horses, coat color shows three possible phenotypes, which are red (RR), white (WW), and roan (RW).

When two homozygous parents, one with the red coat and the other with the white coat, breed, they produce heterozygous offspring with the genotype RW, which exhibits a roan coat color that is neither red nor white.

Therefore, the phenotype of the heterozygote is an intermediate of the phenotypes of the two homozygotes, which is why coat color in these horses is considered an example of incomplete dominance.

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fill in the blank. to create a dopamine deficient (dd) mouse that retains the ability to produce ne, the gene for___is selectively restored in noradrenergicc neurons

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To create a dopamine deficient (dd) mouse that retains the ability to produce ne, the gene for dopamine beta-hydroxylase (DBH) is selectively restored in noradrenergic neurons.

DBH is an enzyme that converts dopamine to norepinephrine (ne), and its expression is critical for the production of ne. By restoring DBH expression specifically in noradrenergic neurons, researchers can create a mouse that lacks dopamine but still produces ne.

This can be a useful tool for studying the effects of dopamine deficiency on behavior, as well as the specific roles of dopamine and ne in various physiological processes. Additionally, this technique could potentially be used to develop new treatments for disorders that involve abnormalities in dopamine or ne signaling, such as Parkinson's disease or depression.

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which of the following are among the first carbohydrates formed by algae and green plants when exposed to light?

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The first carbohydrates formed by algae and green plants when exposed to light are typically simple sugars such as glucose and fructose.

These sugars are produced during the process of photosynthesis, which occurs in specialized organelles called chloroplasts. In photosynthesis, light energy is used to convert carbon dioxide and water into glucose and oxygen. Glucose is then used as a source of energy for the plant or stored as starch for later use.

Fructose can also be produced from glucose through a series of chemical reactions. These simple sugars are essential building blocks for the more complex carbohydrates that plants and algae produce as they grow and mature.

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which of the following are among the first carbohydrates formed by algae and green plants when exposed to light?

6.1.d compare the direction in which replication forks move with the direction in which the new dna strands are synthesized.

Answers

Compare the law in which new DNA strands are synthesized with the law in which replication forks move. New DNA strands are synthesized in the 5' to 3' direction, whereas replication proceeds bilaterally.

DNA is constantly combined in the 5'- to-3' course, implying that nucleotides are added exclusively to the 3' finish of the developing strand. The binding of the new nucleotide's 5'-phosphate group to the growing strand's 3'-OH group is depicted in.

Continuously, a single strand is synthesized in the direction of the replication fork; The term for this is the leading strand. Okazaki fragments—short stretches of DNA that are synthesized in a direction away from the replication fork—are produced for the other strand. The lagging strand is the name given to this strand.

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according to these data which of the wavelenghts of light energy provides the least enerfy potential for photosynthesis

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the answer is: 550 nm only

mark brainliest please

A DNA template having the base sequence 3'-A-G-A-T-G-A-5' would produce a mRNA with a base sequence of what?

Answers

The complementary base pairing laws of DNA and RNA can be used to determine the mRNA base sequence generated from the provided DNA template sequence.

Thymine (T) is replaced by uracil (U) as the complimentary nucleotide for adenine in RNA (A). The mRNA sequence would be as follows:

5'-U-C-U-A-C-U-C-3'

Whereas mRNA is generated in the 5' to 3' direction and the DNA template sequence is read in the 3' to 5' direction. As a result, the nucleotides in the mRNA sequence are arranged in the DNA template sequence's reverse complement.

DNAThe complementary base pairing rules between DNA and RNA are observed during the transcription of DNA into RNA. Guanine (G) pairs with Cytosine (C) in DNA and RNA, while Adenine (A) pairs with Uracil (U) in RNA.The DNA template's 3'-A-G-A-T-G-A-5' sequence is provided. Using the complementary base pairing rules, we must swap each base out for its RNA counterpart in order to produce the mRNA sequence. In the DNA template sequence, this means that:Guanine (G) pairs with Cytosine, while Adenine (A) pairs with Uracil (U) (C)As a result, the following mRNA sequence would be produced from the provided DNA template sequence:5'-U-C-U-A-C-U-C-3'Keep in mind that the nucleotides in the mRNA sequence are arranged in the DNA template sequence's reverse complement.

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ossification is a dynamic process involving several different cell types with roles related to bone growth.

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Ossification is a complex process that involves a variety of different cell types. The process is important for bone growth and development and is essential for maintaining bone health throughout life.

Ossification is a dynamic process involving several different cell types with roles related to bone growth. It is the process by which bone forms from preexisting connective tissue through a process of mineralization. The process occurs in two main stages: endochondral ossification and intramembranous ossification. Endochondral ossification occurs in long bones that have a cartilage template, while intramembranous ossification occurs in flat bones. The process of ossification involves a variety of cell types, including osteoblasts, osteoclasts, and chondrocytes. Osteoblasts are bone-forming cells that secrete collagen and other proteins, which form the matrix of bone. They also secrete alkaline phosphatase, which is important for the mineralization of bone. Osteoclasts are bone-resorbing cells that break down bone tissue. They are important in maintaining the balance between bone formation and resorption. Chondrocytes are cartilage-forming cells that are important in endochondral ossification. They secrete a matrix of collagen and proteoglycans, which is then mineralized to form bone.

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Please help on this fast question 4. Only

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Green will increase and yellow will decrease

The population of green insects would increase and the number of yellow insects will get decrease. Therefore, option "A" is correct. The phenomenon responsible is camouflage which is part of natural selection.

The insects green in color can camouflage with the green leaves and can easily save themselves from predators. The yellow insect cannot camouflage because of their bright color yellow. They can be easily detected by predators as yellow is visible. Hence, the population of green insects can increase whereas yellow insects will decrease.

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Photosystem II A) has P700 at its reaction center. B) is reduced by NADPH. C) passes electrons to photosystem I. D) does not have a reaction center. E) releases CO2 as a by-product.

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Photosystem II has P700 at its reaction center. This is a photosystem composed of chlorophyll and other accessory pigments that absorb light energy. P700 is the type of chlorophyll that acts as the reaction center for this photosystem.

Photosystem II is reduced by NADPH. This is a coenzyme that carries electrons and is responsible for providing the electrons necessary for Photosystem II's function. Photosystem II passes electrons to Photosystem I. Photosystem I then passes electrons to an enzyme known as Ferredoxin, which in turn passes electrons to NADP+. Photosystem II does not have a reaction center. This is because the reaction center is composed of P700 chlorophyll, which is only found in Photosystem II. Photosystem II releases CO2 as a by-product. This happens when energy from light is absorbed by the reaction center and the electrons from Photosystem II are passed to Photosystem I. The CO2 is then released as a result of the electron transfer.

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list some characterisitics that viruses share with living organisms and explain why viruses do not fit our usual defnition of life

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Viruses share some characteristics with living organisms, such as the ability to replicate and evolve through genetic mutation. They also have genetic material, either DNA or RNA, which allows them to store and transmit information.

They use this information to hijack host cells and manipulate cellular machinery to produce more virus particles. Additionally, viruses can exhibit some degree of specialization and host range, which allows them to infect specific host cells or organisms.

However, viruses do not fit our usual definition of life for several reasons. Firstly, they cannot replicate independently and require a host cell to do so. Secondly, viruses lack a metabolism and cannot carry out cellular processes, such as respiration or digestion, on their own. Thirdly, viruses cannot maintain homeostasis and are unable to regulate their internal environment, unlike living organisms.

Furthermore, viruses lack the ability to respond to stimuli or adapt to changing environments on their own, and they do not have the capacity for growth or development. These factors contribute to why viruses are not considered living organisms but rather biological entities that exist in a sort of "grey area" between living and non-living entities.

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BRONZE
1. Suggest a suitable training
zone for a 25-year-old javelin
thrower.
2. Suggest a suitable training
zone for a 25-year-old
marathon runner.
SILVER
3. Apart from the difference
in heart rates, what other
differences would there be
in the training schedules of
the javelin thrower and the
marathon runner? Why?

Answers

1.) For 25-year-old javelin thrower,  suitable training zone would be between 80-90% of their maximum heart rate (MHR) ; 2.) For 25-year-old marathon runner, suitable training zone would be between 60-70% of their MHR ; 3. Javelin thrower would focus on explosive power, speed and anaerobic endurance whereas marathon runner would focus more on aerobic endurance.

What differences would there be in training schedules of  javelin thrower and marathon runner?

2.) For 25-year-old marathon runner, suitable training zone would be between 60-70% of MHR and this training zone is considered low-intensity and helps improve aerobic endurance, cardiovascular fitness, and also muscular endurance.

3.) Apart from difference in heart rates, there are several other differences in training schedules of  javelin thrower and marathon runner. Javelin thrower focuses more on explosive power, speed and anaerobic endurance whereas marathon runner focuses more on aerobic endurance, cardiovascular fitness and muscular endurance. Javelin thrower require more skill-specific training like throwing technique whereas marathon runner requires more distance-specific training like long-distance runs.

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based on the data in the graph, which of the following should be used to calculate the difference in ld50 for the two different species of mice?

Answers

Based on the data in the graph 575mg−490mg should be used to calculate the difference in ld50 for the two different species of mice.

ToxicologyThe median lethal dose, also known as LD50, LC50, or LCt50, is a hazardous unit used in toxicology to assess the deadly dose of a toxin, radiation, or disease. The dose necessary to cause the death of 50% of a population under test after a predetermined test period is known as the LD50 value for a drug.Values for LD50 and LC50 are used to determine acute toxicity. The insecticide is more hazardous the lower the LD50. An illustration would be that a pesticide with an LD50 of 5 mg/kg is 100 times more toxic than one with an LD50 of 500 mg/kg. The following two values are given in milligrams per kilogram of the animal's body weight (mg/kg body wt.).

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TRUE/FALSE. Cells of the shoot elongation zone expand when auxin concentrations increase

Answers

It is true that cells of the shoot elongation zone expand when auxin concentrations increase.

The elongation zone is the region where the cells are rapidly increasing in size and contributing to the growth of the organ, which in this case is the shoot. The shoot elongation zone is the portion of the plant that extends from the base of the shoot to the topmost leaf primordia.

Auxin is a hormone that regulates plant growth and development by promoting cell expansion and division. Auxin aids in the growth of plant organs by stimulating cell elongation, cell differentiation, and cell division, and it is found in the apical meristems of the stem and roots.

In conclusion, it is true that cells of the shoot elongation zone expand when auxin concentrations increase.

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select all of the following that are able to pass freely through the phospholipid bilayer without the assistance of transport proteins.

Answers

All small, non-polar molecules that are able to pass freely through the phospholipid bilayer without the assistance of transport proteins are:

OxygenCarbon dioxideSteroid hormones

Larger molecules, polar molecules, and ions require transport proteins or channels to cross the phospholipid bilayer.

What is Steroid hormones?

Steroid hormones are a class of hormones that are derived from cholesterol and include testosterone, estrogen, and cortisol. They are small, non-polar molecules that can easily diffuse through the phospholipid bilayer of cell membranes and bind to intracellular receptors to modulate gene expression and cellular activity. Steroid hormones are involved in many physiological processes, including growth and development, reproduction, and stress response.

What are transport proteins?

Transport proteins are membrane proteins that facilitate the movement of molecules or ions across the cell membrane. They include channels, carriers, and pumps that selectively bind to and transport specific substances, such as glucose, amino acids, ions, and water, into or out of the cell. Transport proteins are essential for maintaining the proper balance of ions and molecules within the cell and for supporting many cellular processes, including nutrient uptake, waste removal, and cell signaling.

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As animal nutritionist working. ain on different ways animals obtain their food, design ciposter on how goats feed from birth to maturity.

Answers

During childhood (Birth to 3 Months), Goats are entirely dependent on their mothers' milk for nutrition. Weaning, Section 2 (3 to 6 Months)

Teenage years (6 Months to 1 Year)

Goats require extra protein and energy to promote growth and development.

A teenage goat chowing down on some concentrated food or medicine.

Depending on their intended purpose, goats have various nutritional requirements.

Picture an adult goat consuming food tailored to its needs.

Animal nutritionistOver the first few months of their lives, newborn goats consume their mother's milk. First milk from the mother is crucial because it contains nutrients that help keep the young goat from getting sick.Goat calves begin consuming solid foods like hay and grass after a few weeks. They also start to eat grains and other foods. After a few months, kids can solely eat solid food and are no longer dependent on their mother's milk.Goat calves require more food as they get older in order to grow. Kids require special diets with lots of protein and energy to help them grow muscles and bones.Depending on what they're employed for, mature goats require different sorts of nourishment.

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What is the answer to this question?

Answers

The ribosomes are composed of RNA and protein and are the site of protein synthesis.

What are ribosomes?

The ribosomes are composed of RNA and protein and are the site of protein synthesis.

Ribosomes are found in all living cells and are responsible for assembling amino acids into polypeptide chains, which then fold into functional proteins.

Ribosomes can be found free-floating in the cytoplasm or attached to the endoplasmic reticulum in eukaryotic cells.

Prokaryotic cells have smaller ribosomes compared to eukaryotic cells, which makes them a target for certain antibiotics that can selectively inhibit bacterial protein synthesis without affecting human cells.

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fill in the blank. a___plot describes which structures in a polypeptide are sterically possible and which are not based on the angles of rotation about the backbone

Answers

A Ramachandran plot describes which structures in a polypeptide are sterically possible and which are not based on the angles of rotation around backbone bonds.

The permitted areas of steric angles of rotation around the backbone bonds of a polypeptide are graphically represented by a Ramachandran plot.  The Ramachandran plot is frequently used to examine the structure of proteins and pinpoint the parts of a protein that are most likely to be in the conformation that is most advantageous from an energy standpoint.

Its diagram represents a scatterplot of the angle values, which represent rotational angles around the alpha-carbon bonds in the polypeptide backbone. The figure is divided into permitted and prohibited parts. The allowed sections correspond to conformations of the polypeptide backbone that are energetically beneficial, while the disallowed regions relate to steric conflicts among atoms that prevent or favor specific conformations.

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Given your understanding of transcription and translation, fill in the blanks beliw and indicate the 5' and 3' ends of each nucleotide sequence. Again, assume no RNA processing occurs.
Nontemplate strand of DNA:
5' A T G T A T G C C A A T G C A 3'
Template strand if DNA:
mRNA:
Anticodona on complementary tRNA:

Answers

Nontemplate strand of DNA: 5' A T G T A T G C C A A T G C A 3'

Template strand of DNA: 3' T A C A T A C G G T T A C G T 5'

mRNA: 5' A U G U A U G C C A A U G C A 3'

Anticodon on complementary tRNA: 3' U A C A U A C G G U U A C G U 5'

The 5' end of the nucleotide sequence is the first nucleotide from the left, and the 3' end is the last nucleotide from the right. For the mRNA and tRNA sequences, the 5' end is the first nucleotide on the left, and the 3' end is the last nucleotide on the right. The template strand of DNA is read in the 3' to 5' direction, and the mRNA is synthesized in the 5' to 3' direction.

The anticodon on the complementary tRNA is complementary to the codon on the mRNA and is read in the 3' to 5' direction.

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