(Q018) While studying with you for an exam, a classmate claims that the only difference between australopithecines and early Homo species is that the latter had a bigger brain. What example could you give to demonstrate that there are other differences?

Answer:

The genotype of a fly can be determined gray bodied is dominant over black body flies. The possible genotype of a fly is either YY or Yy.

Explanation:

The genotype of a gray bodied fly can be determined with the help of punnett square. The gray bodied fly is crossed with black bodied fly, the original genotype of the fly can be determined. This type of cross is known as test cross.

If the cross results in the formation of all gray bodied progeny, the fly is homozygous dominant with the genotype YY. The cross results in  the mixture of progeny with gray and black body , then the genotype of a fly is heterozygous dominant Yy.

Thus, the genotype of a fly can be determined by the test cross. The fly may have genotype either YY or Yy.

Answer:

The correct answer will be

1. Lengthen

2. Lengthen, shortens

3. Disassemble

Explanation:

There are three types of microtubules present during cell division: kinetochore, aster and polar microtubules.  

1. During prophase: all types of microtubules grow out at their positive(+) ends which functions to pull and push the sister chromatids apart towards opposite poles so they lengthen.

2. During anaphase : non-kinetochore microtubules- polar microtubules polymerization takes place at their (+) ends which causes the spindle fibres to move apart  while kinetochore microtubules which have been attached to the kinetochores of chromosomes shorten at their (+) ends and  motor proteins travel to (-) end because of which sister chromatids move towards the spindle poles.

3. During telophase: non-kinetochore microtubules depolymerize or disassembles.

Thus, 1. Lengthen, 2. Lengthen, shortens and 3. Disassemble are the correct options.

In mitosis, the microtubules of the mitotic spindle lengthen during prophase. In anaphase, nonkinetochore microtubules lengthen while kinetochore microtubules shorten. During telophase, nonkinetochore microtubules disassemble.

The mitotic spindle plays crucial roles during the process of cell division called mitosis in animal cells. The spindle consists of two types of microtubules, namely, kinetochore and nonkinetochore microtubules, each having unique functions during different stages of mitosis. Let's understand these functions to complete your sentences:

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Answer: Segmentation;do not

Explanation:

The food that we ingest through mouth and the food moves from mouth to esophagus and then from esophagus to intestine followed by stomach.

Segmentation can be defined as the contraction that occurs in large and small intestine. In this process contraction moves the chyme in both directions which allows a better of the secretions with the chyme. This process do not takes place along the tract.

The correct answers are segmentation and do not.

Answer:

1. simple diffusion.

2. facilitated diffusion.

3. active transport.

4. both simple and facilitated diffusion.

Explanation:

1. Simple diffusion can be defined as transport of small, non-polar, uncharged molecules, such as urea, gases, water through the lipid bilayer without the help of transport proteins.

As molecular oxygen and carbon dioxide are gases, these molecules would be transported by simple diffusion.

Thus, statement 1 correctly matches with option (D).  

2. Facilitated diffusion involves transport of polar, charged, and large molecules, such as ions, glucose, and amino acids with the help of membrane proteins, known as transport proteins.

Passive transport is an example of of facilitated diffusion, which includes transport of molecules from higher to lower concentration (along their concentration gradient) without use of energy.  

As ions are travelling down their concentration gradient, it is an example of facilitated transport.

Thus, statement 2 correctly matches with option (B).  

3. Active transport is a type of facilitated diffusion that involves transport of molecules against their concentration (from lower to higher) with the help of energy. As glucose is travelling against its concentration, it is an example of active transport.  

Thus, statement 3 correctly matches with option (C).  

4. Water molecules are small, charged molecules that can be transported by both simple diffusion through lipid bilayer or facilitated diffusion through transport proteins, aquaporins.

Thus, statement 4 correctly matches with option (A).  

Final answer:

The transport methods for various molecules across the plasma membrane are specific to their nature and include simple diffusion for O2 and CO2 (D), facilitated diffusion for inorganic ions (B), active transport for glucose against its concentration gradient (C), and osmosis/simple diffusion or through aquaporins for water (A).

Explanation:

Transport across the plasma membrane includes various mechanisms such as simple diffusion, facilitated diffusion, active transport, and osmosis. These mechanisms depend on the nature of the molecule being transported and the direction relative to the concentration gradient.

Molecular oxygen (O2) and carbon dioxide (CO2) traveling down their concentration gradient can move through the plasma membrane by simple diffusion (Choice D).

Inorganic ions traveling down their concentration gradient typically require facilitated diffusion through channel or carrier proteins (Choice B).

Glucose, when traveling against its concentration gradient, is transported by active transport mechanisms that require energy (Choice C).

Water molecules (H2O) traveling down their concentration gradient generally pass through the membrane by means of osmosis, which can occur via simple diffusion or through aquaporins (Choice A).

Answer:

A. is initiated by distension of the wall of the colon

Explanation:

not sure

Answer:

Cells divide twice

Explanation:

Meiosis may be defined as the process of cell division in which a single cell divides to give four daughter cells and each daughter cells  have half number of chromosomes.

Meiosis is also known as reduction division as the chromosome number reduces upto half in the progeny cells as compared with the parent cell. The cells divide twice in meiosis and give rise to four daughter cells.

Thus, the correct answer is option (4).  

Meiosis is a cellular division that results in four daughter cells with half the number of chromosomes of the parent cell. Specifically, cells in meiosis divide twice across two phases: Meiosis I and Meiosis II.

During meiosis, cells divide twice. Meiosis is a type of cellular division that results in four daughter cells, each with half the number of chromosomes of the parent cell. It consists of two successive divisions: Meiosis I and Meiosis II. During Meiosis I, homologous chromosomes pair up and then separate, resulting in two cells. In Meiosis II, these cells divide again, resulting in four cells with half the number of chromosomes as the original cell.

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Answer:

Option (A).

Explanation:

Saddle joint is a type of synovial joint and also known as sellar joint. These joints are present in thumb, shoulder and inner ear.

The bone has one part concave inward and other part is convex outward. This bone can articulate with thumb's metacarpal and trapezium of the carpal bone. Saddle joints show abduction and adduction movements.

Thus, the correct answer is option (A).

The saddle joint in the hand is the first carpometacarpal joint, located between the trapezium carpal bone and the first metacarpal bone of the thumb, allowing for the distinct opposability of the thumb.

The saddle joints in the human body are a type of synovial joint where the articulating bone surfaces each resemble a saddle, which is concave in one direction and convex in the other. This design allows for a wide range of movements.

Specifically, in the hand, the saddle joint is found at the first carpometacarpal joint, which is between the trapezium, one of the carpal bones, and the first metacarpal bone that forms the base of the thumb. This versatile joint enables the thumb to move across two planes, allowing for the distinctive human ability to oppose the thumb against the other fingers.

Based on this description, the correct answer to which two bones articulate to form a saddle joint in the hand is: A. The trapezium of the carpal bone and the thumb's metacarpal.

Answer:

b. A deep, narrow river divides a population of hummingbirds.

Explanation:

Hummingbirds can fly across the river. The deep and narrow river can not separate a population of hummingbirds into two patches since hummingbirds from one side of the river can fly and reach to the other side of the river.  

Without any geographical isolation, hummingbirds can continue to interbreed among themselves. The continued interbreeding would not allow their reproductive isolation and thereby would prevent the allopatric speciation.  

Answer: Possible  Reasons- Low concentration of DNA fragments, reaction volume more than 10μl, unequal concentration of control and experiment  for transformation.

Incorrect ligation and poor ligase activity result in no colony growth on agarose plate.

Explanation:

Low concentration of DNA will not allow colonies to grow on agarose plate. Reaction volume must be less than 10μl. Different concentration of control and experiment will also affect growth of colonies.

Inefficient ligation result in no colony growth on agarose plate. This could be due to incorrect ligation between blunt and sticky ends. T4 DNA ligase joins the ends of DNA. Ligase poor activity will not allow colonies to grow on agarose plate.

Answer:

Protection from infection known as species resistance is a result of both the absence of necessary receptors and lack of suitable environment in the body.

Answer:

The nervous system together with the endocrine system enables the organism to perceive the variations of the (internal and external) to disseminate modifications that these variations produce and execute the answers appropriate to maintain the internal body balance (homeostasis). The autonomic nervous system divides into the sympathetic nervous system and parasympathetic nervous system. In general, these two systems have opposite (antagonistic) functions, they correct the excesses of the other.

For example, if the sympathetic system speeds up too much the heartbeat, the parasympathetic system kicks in, slowing down the heart rate. If the sympathetic system speeds up stomach work and intestines, the parasympathetic comes into action to reduce the contractions of these organs. The sympathetic generally stimulate actions that mobilize energy, allowing the body to respond to stressful situations. For example, the sympathetic system is responsible for the acceleration of heart rate, by increasing the blood pressure, the concentration of blood sugar and by activating the general metabolism of the body. On the other hand, parasympathetic mainly stimulates relaxing activities, such as reductions in the heart rate pace and blood pressure. One of the main differences between the sympathetic nerves and parasympathetic is that the postganglionic fibers of the two systems usually secrete different hormones.

Answer:

Endosteum plays an important role in bone repair, bone remodelling and appositional bone growth.

Explanation:

Endosteum consists of a soft and thin connective tissue that lines the cavity of femur and humerus. Some of the major functions of endosteum are as follows:

Bone remodelling: Endosteum can stimulate the bone resorption that leads to the formation of new bone from the outside.

Bone repair: Hematoma, at the time of bone injury causes the division of endosteal cells and helps in bone repair.

Appositional bone growth: Endosteum that line the osteoblast cell can secrete bone matrix and increases the bone diameter.

Answer: b. causes the gastric glands to increase production of gastric juice.

Explanation:

The parasympathetic nerves are part of the autonomous nervous system. The parasympathetic predominates mainly during "passive responses" of the organism, such as satiety, rest and digestion. Its functions are: Promotes energy conservation, Reduces heart rate, Promotes glandular secretion, Protects the retina from excess light, Promotes emptying of cavities, Promotes rest and repair, Physiologically antagonizes sympathetic nervous system.

Answer:

b. causes the gastric glands to increase production of gastric juice

Explanation:

Parasympathetic stimulation is a function that is carried out by the Parasympathetic Nervous System which is a part of the Autonomic Nervous System.

Parasympathetic stimulation results in the process of digestion, production of saliva, production of urine, Production of tears, decrease in the heart rate and blood pressure.

Parasympathetic stimulation is involves in the process of digestion because after the injection of food , when the body is at rest, Parasympathetic stimulation increase the rate of the digestion process by, stimulating the gastric glands so that they can produce more gastric juice. This gastric juice contains enzymes and some other substances such as

a. Pepsin for the digestion of protein.

b. Renin

c. Hydrochloric acid (HCl) in other to deactivate any bacteria found food present in the stomach.

d. Mucus which helps to protect the lining of the digestive system.

Answer:

Vertebral body

Explanation:

The vertebral body serves as weight-bearing part of a vertebra. The vertebral body is the thick and disc-shaped structure and forms the anterior portion of the vertebrae. A vertebral body has rough inferior and superior surfaces. Being disc-shaped, the vertebral bodies of subsequent vertebrae are stacked upon each other and thereby, serve to carry the weight.

The major weight bearing part of a vertebra is the vertebral body, which progressively increases in size and thickness going down the vertebral column. Lumbar vertebrae carry the greatest amount of body weight and have specific characteristics to support this.

The major weight bearing part of a vertebra is the vertebral body. The vertebral bodies progressively increase in size and thickness going down the vertebral column, with the lumbar vertebrae supporting the greatest amount of body weight due to their large size and thickness. They have short transverse processes and a short, blunt spinous process that projects posteriorly.

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Complete tetanus represents a period of sustained skeletal muscle contraction without detectable individual twitches, occurring at high frequencies of motor neuron signals that fuse contractions into a continuous state.

A period of sustained skeletal muscle contraction in which individual twitches cannot be detected is called complete tetanus. This occurs when the frequency of motor neuron signaling is so high that muscle fibers respond with continuous contractions. A single twitch doesn't produce significant muscle activity in a living body, rather a series of action potentials is necessary for a graded muscle response. During incomplete tetanus, the muscle experiences quick cycles of contraction with short relaxation phases. However, in complete tetanus, the stimulus frequency is high enough that the relaxation phase is eliminated, and the contractions fuse into one sustained contraction.

Answer:

The correct answer should be the second option, that is, Onion root tip cells do not undergo anaphase 1.

Anaphase I is a part of meiosis which occurs only in cells involved in reproduction. For example, gametes.

Onion root tip  cells undergo mitosis.

The chromosome can be observed using compound microscope.

Thus, all other options are incorrect except second option.

Answer:

Explanation:

In the body of a multicellular organisms such as onion plant, there are two types of cells, namely somatic cells and reproductive cells. Somatic cells undergo mitosis and involved in vegetative growth whereas reproductive cells undergo meiosis that form gametes during sexual reproduction. Root tip of opinion consists of meristematic cells which are somatic cells which do not divide by meiosis. A fellow student recognises anaphase I in root tip cells is incorrect because anaphase I is a stage of meiosis I. Root tip cells only divide by mitosis. However, during anaphase I, a pair of chromosome separate which cannot be observed during mitosis in root tip cells.

Answer:

Pretty sure it's Winter.

Explanation:

Tilted away from the Sun.

Answer:

Autumn

Explanation:

General growth media serves the purpose of generating more bacteria colonies to create enough samples to identify to perform other tests. Differential media is used to differentiate species or subspecies of bacteria by how they differentially react to the dyes of chemicals in the media due to differences in metabolic properties of the different bacteria species.  An example of differential media is MacConkey agar.

Differential media enable the differentiation of bacteria based on their metabolic activities. Isolated colonies are used to avoid mixing different types, with initial growth on general media enhancing bacterial cultivation. Subsequent inoculation onto differential media allows for identification through unique characteristics exhibited.

Differential media are typically inoculated with isolated colonies that have been previously cultured on general growth media to ensure the accuracy of the identification process. This is done primarily because some media, particularly differential media, are designed to differentiate between different types of bacteria based on their metabolic activities. The appearance of the bacterial colonies on differential media, such as change in color, can provide crucial insights into the identity of the bacteria.

It's important that only isolated colonies are used to prevent a mix-up of different types of bacteria, which could make interpretation of results challenging. Initially cultivating these bacteria on general growth media also helps enhance the growth of the bacteria, as it provides all the necessary nutrients required for bacterial growth. Their subsequent transfer to the differential media then allows for easy identification based on the unique characteristics they exhibit on these media.

For example, on MacConkey agar, a type of differential medium, bacteria that ferment lactose will cause the medium to turn pink due to acid production. This acid production causes a pH change, which is demonstrated by a color change because of a pH indicator in the medium. Such visible changes make it easier to identify specific types of bacteria.

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Answer:

[tex]1000 ml[/tex] of blood plasma was “cleared”

Explanation:

Given,

Concentration of a person’s blood cortisol [tex]= 10[/tex]µg/mL

The amount of cortisol excreted from the body in a period of 24 hour [tex]= 10[/tex]mg

The volume of blood plasma cleared during this time period is equal to

amount of cortisol excreted from the body divided by Concentration of a person’s blood cortisol

The above definition could be represented as following-

volume of blood plasma cleared  [tex]= \frac{A}{B} \\[/tex]

Where A represents amount of cortisol excreted from the body

while B represents the concentration of a person’s blood cortisol

Substituting the given values in above equation, we get -

[tex]= \frac{10 * 10^{-3}g}{10*10^{-6}\frac{g}{ml} } \\= 1000 ml[/tex]

[tex]1000 ml[/tex] of blood plasma was “cleared”

The volume of blood plasma cleared of cortisol in 24 hours is calculated to be approximately 1000 mL. Clearance rate is found to be roughly 0.694 mL/min.

To find the volume of blood plasma that was "cleared" of cortisol in a 24-hour period, we must use the given values.

The blood cortisol concentration is 10 µg/mL, and 10 mg (which is equal to 10,000 µg) of cortisol is excreted in 24 hours.

C = (Amount of Substance Excreted in 24 Hours) / (Concentration in Blood Plasma * Time in Minutes)

Substitute the known values into the formula:

C = 10,000 µg / (10 µg/mL x 1440 minutes)
C = 10,000 µg / 14,400 µg/mL
C ≈ 0.694 mL/min

Total Volume Cleared in 24 hours = Clearance Rate x Time
Total Volume Cleared in 24 hours = 0.694 mL/min x 1440 minutes
Total Volume Cleared in 24 hours ≈ 1000 mL

Hence, approximately 1000 mL of blood plasma was cleared of cortisol in this 24-hour period.

Answer:

Option (1)

Explanation:

Meiosis is also known as reduction division. Meiosis is the process of cell division by which a  parent cell divides to give four daughter cells each with half number of chromosomes.

Crossing over may occur during meiosis I of the cell cycle. Crossing over will not occur in the cells immediately after the fertilization of egg and zygote restores the original number of chromosomes.

Thus, the correct answer is option (1).

The statement 'crossing over occurs immediately after an egg is fertilized' is NOT true.

In conclusion, the statement 'crossing over occurs immediately after an egg is fertilized' is NOT true.

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Answer:

Asymmetric liposomes have different lipids in outer and inner leaflets, which would greatly increase the flexibility of vesicle in drug delivery systems. It has been well known that the phospholipid distribution in natural membranes is asymmetric. For example, phosphatidyl tcholine and sphingomyelin concentrate at the outer leaflet whereas phosphatidylethanolamine, phosphatidylinositol and phosphatidylserine are mainly localized in the inner leaflet. Typically, Lipids are self-assembled symmetrically in artificial liposomes regardless of the preparation methods. As drug delivery carriers, asymmetric liposomes with advanced functions are appealing candidates for targeted accumulation and controlled drug release. Their outer and inner leaflet could be manipulated depending on the nature of encapsulated drug molecules. For example, asymmetric liposomes help deliver negatively charged siRNA to target organs by having positively charged inner layer that encapsulates siRNA with high efficiency, and negatively charged outer surface prevents nonspecific uptake of the asymmetric liposomes. The unique tunability of asymmetric liposomes opens a wide door for multi-site functionalization, resulting in highly engineered liposomes as advanced drug delivery vesicles

Answer:

The parathyroid glands secretes PTH hormone that controls the blood calcium level.

Explanation:

The PTH is the parathyroid hormone which is secreted by parathyroid gland. It maintains the blood calcium level whenever required in the body.

The hormone increases the amount of calcium by preventing calcium excretion from the urine. The PTH also stimulates the release of calcitriol. The calcitriol allows absorption of calcium from the diet.

Final answer:

Fred's chronic emphysema has led to respiratory acidosis with compensatory metabolic alkalosis, indicated by low but almost normal pH and high bicarbonate levels. His kidneys are attempting to balance the blood's pH, likely leading to alkaline urine shown in urinalysis.

Explanation:

Fred has chronic emphysema, a condition often associated with respiratory acidosis due to hypercapnia, which is an accumulation of CO₂ in the bloodstream. The elevation in bicarbonate levels suggests that his body is attempting to compensate for the acidosis. In a compensatory response, the kidneys retain bicarbonate to neutralize the excess acid. A urinalysis in Fred's case might show an elevated pH due to the body trying to excrete excess hydrogen ions (acidic ions) and retain more bicarbonate.

Chronic respiratory conditions like emphysema impair the lungs' ability to adequately expel CO₂, leading to an increase in the partial pressure of CO₂ (pCO₂) and a decrease in blood pH, initiating acidosis. However, over time, the kidneys attempt to regenerate and reabsorb bicarbonate ions as a compensatory mechanism, which is why Fred's bicarbonate levels are significantly elevated. Meanwhile, the urinalysis might further confirm this compensation by showing increased bicarbonate or alkaline urine, indicating the kidneys are working to correct the pH imbalance.

Answer: a. Adenine

Explanation:

Two types of chemically similar nucleic acids, DNA (deoxyribonucleic  acid) and RNA (ribonucleic acid), are the principal  information-carrying molecules of the cell. The bases adenine, guanine, and cytosine are detected in both DNA and RNA while thymine is observed only in DNA, and uracil is located only in RNA. When it comes to defining the nucleic acid-based in the nature of its nitrogen- and carbon-containing ring structure we have the variation that answers the question. While b. Uracil, c. Cytosine, and d. Thymine only contains a single ring, which we call pyrimidines, the biomolecule a. Adenine contains a pair of fused rings that we call purines, the right answer for the question.

Answer:

Facilitated diffusion

Explanation:

Facilitated diffusion is the process of diffusion in which ion or some substances are transported across the membrane by a specific carrier membrane protein. The process does not require the input of energy and is driven by a concentration gradient.  

The absorption of simple sugars in small intestine occurs through facilitated diffusion. The polar sugar molecules can not cross the nonpolar inner core of the membrane. Hence, the membrane proteins transport the sugars down the concentration gradients without any input of energy.  

The body contains two main types of tissue membranes: connective tissue and epithelial membranes. The three types of epithelial membranes are mucous membranes, serous membranes, and the cutaneous membrane (skin), each serving unique protective and functional roles in the body's operation.

There are two broad categories of tissue membranes in the human body: connective tissue membranes and epithelial membranes. Among these, three specific types of epithelial membranes exist, playing critical roles in the body's function and structure. These are:

Lastly, connective tissue membranes include synovial membranes, which line the moveable joint cavities, facilitating smooth joint movements. Understanding these membranes is essential for comprehending how the body protects, separates, and ensures the smooth operation of its internal mechanisms.

Answer:

The correct answer is 18 ATP and 12 NADPH and noncyclic photophosphorylation can produce ATP molecule in the absence of cyclic photophosphorylation.

Explanation:

ATP and NADPH molecules are synthesized during light reaction of the photosynthesis which is utilized during the reactions of the dark phases. Dark reaction or Calvin cycle (C3 cycle) is the cyclic pathway of producing glucose triose phosphates (3C) from carbon dioxide and water. This reaction proceeds into 3 phases: carboxylation, reduction and regeneration.

First ATP and NADPH are utilized during the reduction step in the reduction of 3-phosphoglycerate to glucose-3-phosphate by the transfer of phosphate group from 6 ATP to 3-phosphoglycerate and 6 NADPH reduction as it donates an electron. Regeneration step also uses 3 ATP in conversion of G3P to RUBP molecules.  

A total of 9 ATP and 6 NADPH are utilized in producing 3C G3P molecule, So, to produce 6C sugar molecule 18 ATP AND 12 NADPH are used.

During chemiosmosis synthesis of ATP, 4 protons produce 1 molecule of ATP which could be able to generate 3 molecules of ATP for each pair of NADPH. so, noncyclic photophosphorylation or Z-scheme will be able to produce ATP in the absence of cyclic photophosphorylation.

Thus, 18 ATP and 12 NADPH and noncyclic photophosphorylation can produce ATP molecule in the absence of cyclic photophosphorylation are the correct answer.

Final answer:

A translocation between chromosome 4 and chromosome 12 in the man's genetic makeup can affect his sperm by increasing the likelihood of producing abnormal sperm. Consulting with a genetic counselor is recommended to assess the specific risks and make informed decisions.

Explanation:

A translocation occurs when a portion of one chromosome breaks off and attaches to a different chromosome. In the case of the prospective couple, the man has a balanced translocation between chromosome 4 and chromosome 12. This means that the genetic material is exchanged between these two chromosomes without any material being lost or gained.

However, translocations can still affect fertility because they can cause problems during meiosis, the process of cell division that produces sperm and eggs. During meiosis, chromosomes need to pair up and separate properly to produce healthy gametes. In the case of a translocation, the rearrangement of genetic material can disrupt the pairing of chromosomes, leading to a higher likelihood of producing abnormal sperm or eggs.

Therefore, while the translocation itself may not cause any noticeable physical abnormalities in the man, there is a higher chance that his sperm might be abnormal due to the rearrangement of chromosomes. It is important for the couple to consult with a genetic counselor to assess the specific risks and make informed decisions about their reproductive options.

Answer:

The molar concentration of [tex]35[/tex] g fructose in [tex]330 ml[/tex] solution is [tex]0.589[/tex]moles/litre

Explanation:

Given -

Molecular weight of fructose [tex]= 180 \frac{g}{mole}[/tex]

Can of coka coal has fructose [tex]= 35[/tex] gram

Volume of can of coke [tex]= 330[/tex] ml

Number of moles in [tex]35[/tex] grams of Fructose

[tex] = \frac{35}{180} \\= 0.194[/tex]

Molar concentration

[tex] = \frac{0.194}{0.33l} \\= 0.589\\[/tex] moles/litre

Hence, the molar concentration of [tex]35[/tex] g fructose in [tex]330 ml[/tex] solution is [tex]0.589[/tex]moles/litre

Final answer:

The molar concentration of fructose in a can of Coca-Cola is determined by dividing the mass of fructose by its molecular weight to find the moles, and then dividing by the volume in liters to find the concentration, which is 0.589 mol/L.

Explanation:

The molar concentration of fructose in coke cola can be calculated using the formula for molarity, which is moles of solute per liter of solution (mol/L). The moles of fructose are found by dividing the mass of fructose by its molecular weight. In this case, 35 g of fructose is divided by 180 g/mole to find the moles of fructose. To find the volume in liters, we convert 330 mL to liters by dividing by 1000, since there are 1000 mL in a liter.

We calculate the moles of fructose:
moles of fructose = 35 g / 180 g/mole = 0.1944 moles.

Then we convert the volume of Coca-Cola to liters:
volume in liters = 330 mL / 1000 = 0.33 L.

Finally, the molar concentration of fructose in Coca-Cola is:
molar concentration = 0.1944 moles / 0.33 L = 0.589 mol/L.

Answer:

Central nervous system includes brain and spinal cord. Peripheral nervous system includes autonomic nervous system and somatic nervous system.

Explanation:

Nervous system consists of electrically excitable cell called neurons and collection of nerves that transmit information in the body.

Nervous system is mainly divided into two parts - PNS (peripheral nervous system) and Central nervous system (CNS) . The CNS  of the body consists of spinal cord and brain that regulates and coordinates all the functions of the body.

PNS consist of cranial and spinal nerves. This system is divided into Autonomic nervous system ( controls involuntary actions of body) and somatic nervous system ( control the voluntary actions of the body).

The Central Nervous System, composed of the brain and spinal cord, controls most functions of the body. The Peripheral Nervous System, made up of nerves and ganglia beyond the CNS, serves as a communication line connecting all parts of the body to the CNS. The PNS has two subdivisions: the autonomic and somatic nervous systems.

The Central Nervous System (CNS), is composed of the brain and spinal cord, serving as the main data center within the body. It is essentially contained within the cranial and vertebral cavities of the body. In contrast, the Peripheral Nervous System (PNS) encompasses all bodily structures beyond the brain and spinal cord. It consists of nerves and ganglia, carrying messages from the CNS to the muscles, organs, and senses in the periphery of the body. It can be further divided into two major subdivisions: the autonomic and somatic nervous systems.

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