When a metal rusts, it gains oxygen. This means it is a(n) __________ reaction. What one word completes the sentence?

Answers

Answer 1

Answer:

chemical reaction

Explanation:


Related Questions

Both the electron transport chain and the Krebs Cycle (TCA
Cycle) occur within the [ Select ] . The electron transport chain
produces ATP via [ Select ] . The Krebs Cycle generates ATP via [
Select ]

Answers

Both the electron transport chain and the Krebs Cycle (TCA Cycle) occur within the mitochondria. The electron transport chain produces ATP via oxidative phosphorylation. The Krebs Cycle generates ATP via substrate-level phosphorylation.

What is a mitochondrion?

Mitochondria (plural of mitochondrion) are organelles in the cell responsible for generating energy. The word mitochondrion comes from the Greek words mitos, which means thread, and khondrion, which means granule, which is a reference to their shape. They produce the vast majority of a cell's ATP, which is the cell's main energy source.The Krebs Cycle is a cycle of chemical reactions that occurs in the matrix of the mitochondria in eukaryotic cells. It is also known as the tricarboxylic acid (TCA) cycle or the citric acid cycle.

The cycle is a series of redox reactions that occur in the matrix of the mitochondria. The cycle generates both NADH and FADH2, which are used to drive the electron transport chain (ETC).The Electron Transport ChainThe electron transport chain is a series of redox reactions that take place in the inner mitochondrial membrane.

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One of the following hormones can stimulate growth of the intestinal mucosa and two other hormones can stimulate pancreatic growth. Which three hormones are these?
a. Gastrin Secretin b. Cholecystokinin GLIP c. Motilin

Answers

The three hormones that can stimulate growth of the intestinal mucosa and pancreatic growth are Gastrin, Secretin, and Cholecystokinin.

Gastrin is a hormone that is produced by the stomach and stimulates the growth of the intestinal mucosa.
Secretin is a hormone that is produced by the small intestine and stimulates the growth of the pancreas.
Cholecystokinin is a hormone that is produced by the small intestine and also stimulates the growth of the pancreas.
Therefore, the correct answer is option a. Gastrin, Secretin, and Cholecystokinin.
It is important to note that GLIP and Motilin are also hormones, but they do not stimulate the growth of the intestinal mucosa or the pancreas. GLIP is a hormone that is produced by the small intestine and stimulates the release of insulin, while Motilin is a hormone that is produced by the small intestine and stimulates gastrointestinal motility.

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Briefly describe how DNA and encodes genetic information in general terms. This question is not asking for specific mechanisms of DNA expression, just a sentence or two about how DNA sequence and how it relates observable traits

Answers

The description of DNA and encodes genetic information in general terms is a molecule that contains the genetic instructions for the development, growth, and function of all living organisms.

DNA or deoxyribonucleic acid is made up of four nucleotides: adenine (A), thymine (T), guanine (G), and cytosine (C). These nucleotides are arranged in a specific sequence, which determines the genetic information encoded in the DNA. This sequence is used to create RNA, which in turn is used to create proteins.

These proteins determine the observable traits of an organism, such as eye color, height, and susceptibility to certain diseases. In general, DNA encodes genetic information through the specific sequence of nucleotides, which is then used to create the proteins that determine an organism's traits.

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Enzymes that catalyze hydrolysis reactions by adding water to
cleave the bond and hydrolyze are which class of
enzymes?

Answers

Enzymes that catalyze hydrolysis reactions by adding water to cleave the bond and hydrolyze are classified as hydrolases.

Hydrolases are a type of enzyme that catalyze the hydrolysis of chemical bonds. They are responsible for breaking down complex molecules into simpler ones by adding water to the bond, which cleaves it and allows the molecule to be hydrolyzed. This process is essential for many biological functions, including digestion and metabolism.

Some examples of hydrolases include:
- Lipases, which catalyze the hydrolysis of fats and oils
- Proteases, which catalyze the hydrolysis of proteins
- Nucleases, which catalyze the hydrolysis of nucleic acids

In summary, enzymes that catalyze hydrolysis reactions by adding water to cleave the bond and hydrolyze are classified as hydrolases.

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First draw a diacylphosphogylcerol in which both acyl-groups result from condensation reactions with omega 3 18:1 fatty acids a) if this molecule were saponified with a strong base, each of the fatty acids released would have how many hydrogens covalently bound to carbon #1?

Answers

A diacylphosphoglycerol with two omega 3 18:1 fatty acids would look like this:

In this molecule, the two acyl-groups are attached to the glycerol backbone through condensation reactions. Each of the fatty acids has 18 carbons and one double bond, indicated by the 18:1 notation.

If this molecule were saponified with a strong base, each of the fatty acids would be released from the glycerol backbone.

The fatty acids would then have a free carboxyl group (-COOH) at one end, which is where the hydrogen atoms would be covalently bound to carbon #1.

Each of the fatty acids would have two hydrogens covalently bond to carbon #1, as shown below:



Therefore, the answer to the question is that each of the fatty acids released during saponification would have two hydrogens covalently bound to carbon #1.

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2. Understand ALL, CLL, AML, CML, PMF, CNL and ET: any
chromosome abnormality and their M:E ratios, primary cells apparent
in PBS and age groups affected.

Answers

The following are brief descriptions of various types of leukemia and myeloproliferative neoplasms, their associated chromosome abnormalities, M:E ratios, primary cells apparent in peripheral blood smear, and age groups affected:

Acute Lymphoblastic Leukemia (ALL):

Chromosome Abnormality: Hyperdiploidy, hypodiploidy, translocations involving chromosome 12, 21, or 9.

M:E Ratio: Increased myeloid to erythroid ratio

Primary Cells Apparent in PBS: Blast cells

Age Groups Affected: ALL is the most common type of leukemia in children, but it can also occur in adults.

Chronic Lymphocytic Leukemia (CLL):

Chromosome Abnormality: Deletion of chromosome 13q14, trisomy 12, and other less common abnormalities

M:E Ratio: Increased myeloid to erythroid ratio

Primary Cells Apparent in PBS: Lymphocytes

Age Groups Affected: CLL primarily affects older adults, with the average age of onset being around 70 years old.

Acute Myeloid Leukemia (AML):

Chromosome Abnormality: Translocations involving chromosomes 8, 15, or 21, deletion of chromosome 5 or 7, and other less common abnormalities

M:E Ratio: Increased myeloid to erythroid ratio

Primary Cells Apparent in PBS: Blast cells

Age Groups Affected: AML can occur at any age, but it is most commonly seen in older adults.

Chronic Myeloid Leukemia (CML):

Chromosome Abnormality: Philadelphia chromosome (translocation between chromosomes 9 and 22)

M:E Ratio: Increased myeloid to erythroid ratio

Primary Cells Apparent in PBS: Mature neutrophils, with occasional blasts

Age Groups Affected: CML is primarily seen in adults, with the median age of onset being around 50 years old.

Polycythemia Vera (PV):

Chromosome Abnormality: JAK2 mutation in the majority of cases

M:E Ratio: Increased erythroid to myeloid ratio

Primary Cells Apparent in PBS: Increased red blood cells

Age Groups Affected: PV is most commonly seen in older adults, with a median age of onset of 60 years old.

Essential Thrombocythemia (ET):

Chromosome Abnormality: JAK2 mutation in the majority of cases

M:E Ratio: Normal or increased megakaryocytes

Primary Cells Apparent in PBS: Increased platelets

Age Groups Affected: ET is most commonly seen in adults, with a median age of onset of 50-60 years old.

Chronic Neutrophilic Leukemia (CNL):

Chromosome Abnormality: Absence of Philadelphia chromosome or BCR-ABL fusion gene

M:E Ratio: Normal or increased myeloid to erythroid ratio

Primary Cells Apparent in PBS: Increased mature neutrophils

Age Groups Affected: CNL is a rare disease and can occur at any age, but it is primarily seen in older adults.

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The most commonly reported agent of food-borne infections is C.
jejuni.
Group of answer choices
True
False

Answers

The most commonly reported agent of food-borne infections is indeed C. jejuni, True. Because it often found in contaminated water and cause diarrhea.

C. jejuni also known as Campylobacter jejuni. Campylobacter jejuni is a non-spore, microaerophilic, Gram-negative, motile, curved rod-shaped bacterium.This bacterium is often found in undercooked poultry, unpasteurized milk, and contaminated water. It is the leading cause of bacterial diarrheal illness in the United States, causing an estimated 1.3 million illnesses each year.

Symptoms of C. jejuni infection include diarrhea, fever, and abdominal cramps. The disease because of C. jejuni is zoonotic, it mean can be transmitted from animals to humans. It is important to properly cook poultry and avoid consuming unpasteurized dairy products in order to prevent infection.

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There have been many oil spills over the years. Perhaps you heard or learned about the Gulf oil spill in the U.S. that happened in April 2010? A spill like this that is close to land causes many problems for the environment and makes it difficult to clean up. As little as three gallons of oil can spread to make a slick mess covering one acre of the ocean's surface. With the Gulf oil spill, it's estimated that 200,000 gallons a day spilled into the ocean. Oil spills like this are very damaging, but they aren't the only source of oil that is polluting our waters. Rain washes particles from air pollution into the ocean. And one of the biggest sources of oil polluting is from the oil people put down their drains every day or runoff from parking lots. Oil and water don't mix—perhaps you have heard this before? And you probably know that oil is sticky and greasy. This makes it even more difficult to clean up. Let's take a look at the chemical properties of oil and water to see why. Each water molecule is made of two hydrogen atoms and one oxygen atom - H2O. When the two hydrogen atoms bond with the oxygen, they attach to the top of the molecule, rather like Mickey Mouse ears. This molecular structure gives the water molecule polarity, or a lopsided electrical charge that attracts other atoms. Because of their polarity, water molecules are strongly attracted to one another. This also gives water its unique properties. Oil is made of more complex molecules, containing carbon and hydrogen. Oil molecules are non-polar, meaning they don't stick together like water molecules do. Oil is thick and heavy, yet its molecules are spread farther apart, lowering the density. Because it has a lower density, oil floats on water's surface.

Answers

Answer:

mddmdnxxnxnxnxnxbbxxbhcxjsjsjwuwususussjdjxjxjxjxj

Read the paragraph and answer the questions.
Chris wanted to test the effect of diet pills on how tall the tomato plants in his garden would grow. He took two pots, filled them with dirt from the same bag, and planted four tomato plants in each. He watered one planter with tap water, and he watered the other planter with tap water mixed with dissolved diet pills. The plants were in the same location to ensure they got the same amount of sunlight, and the water was measured so that each pot received the same amount of water. He measured their height at the end of each week for eight weeks, and averaged the height of the four plants in each pot. He then graphed the results to show how the diet pills affected the height of the plants. 1. What is the independent variable of this experiment?

2. What is the dependent variable of this experiment?

Answers

The independent variable is the water used on the plants.

The dependent variable is the height of the plants.

Because the water is what Chris changed, it's the independent variable. Because the height of the plant is the thing getting affected, or the result of the water, its the dependent variable.

In our bodies, sodium is pumped to the exterior of a cell, and potassium is pumped to the interior. These ions move from a volume of lower concentration to higher concentration-the opposite direction of normal diffusion. Based upon what you have learned, what must happen to allow these ions to move in this manner?​

Answers

Answer:

The movement of sodium and potassium ions against their concentration gradients (from lower to higher concentration) is known as active transport. This process requires energy in the form of ATP (adenosine triphosphate) to pump the ions across the cell membrane. The energy is used to change the shape of a protein called a sodium-potassium pump, which transports the ions across the membrane.

Explanation:

In our bodies, the movement of sodium and potassium ions across the cell membrane is essential for many cellular processes such as nerve transmission, muscle contraction, and maintaining fluid balance. The concentration of sodium ions is higher outside the cell, while the concentration of potassium ions is higher inside the cell.

To maintain these concentration gradients, the cell uses a specialized protein called the sodium-potassium pump, which is embedded in the cell membrane. The pump uses energy from ATP to transport three sodium ions out of the cell for every two potassium ions transported into the cell. This creates a net loss of positive charge from the cell, which contributes to the negative resting membrane potential of the cell.

The movement of ions against their concentration gradient is energetically unfavorable, which is why it requires the input of energy in the form of ATP. The sodium-potassium pump undergoes conformational changes (changes in its shape) as it cycles between binding and releasing sodium and potassium ions, and this is what enables it to transport the ions across the membrane.

Overall, the process of active transport allows our cells to maintain the proper concentration gradients of sodium and potassium ions, which is crucial for many physiological processes.

For each example of weathering, determine whether it is mechanical (physical)weathering or chemical weathering.

1. Glaciers in Antarctica are starting to thaw. The ice starts to crack and pieces break off.

2. After writing with a piece of chalk, the end piece starts to wither away.

3. An Alka-Seltzer tablet starts to bubble and dissolve in a glass of room-temperature water.

4. Slices of apples start to turn brown after being left out for 2 days.

5. Metal fences outside get rained on and start to rust until parts of the fence break off.

Answers

Answer:

1.  Mechanical - ice melting is not a chemical reaction, it is a physical change

2. Mechanical - its force, friction and pressure

3. Chemical - bubbles are a sign of a chemical reaction

4. Chemical - oxidization

5. Rusting is chemical since it is oxidization, parts breaking off could be mechanical if it is due to wind, or some other force.

Explanation:

why the core and rind differentiation not found in the flat
Rhizomorphs (Fungus)?

Answers

The core and rind differentiation is not found in the flat rhizomorphs of fungi because these structures are not present in this type of fungi. The core and rind differentiation is a characteristic of the Agaricomycetes, which are a class of fungi that includes mushrooms, bracket fungi, and puffballs. The flat rhizomorphs, on the other hand, are a type of structure found in the Basidiomycota, which is a different class of fungi that includes rusts and smuts.

The flat rhizomorphs are composed of parallel hyphae that are tightly packed together and are used for the transport of nutrients and water. They do not have the same structure as the Agaricomycetes, which have a core of densely packed hyphae surrounded by a rind of looser hyphae. This is why the core and rind differentiation is not found in the flat rhizomorphs.

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What is the element of the lactose operon?
a.apporepressor
b.enhancer
c.corepressor
d.gene-repressor
e.operator

Answers

The lac operon consists of 3 structural genes, and a promoter, a terminator, regulator, and an operator. E

e)The operator is a key element of the lactose operon that helps regulate the expression of the structural genes involved in lactose metabolism.(e)

The lactose operon is a group of genes in bacteria that are involved in the metabolism of lactose. It consists of three structural genes: lacZ, lacY, and lacA, which encode for enzymes that break down lactose.

In addition to the structural genes, the lactose operon also contains an operator region, which controls the expression of the structural genes by binding to a repressor protein

The repressor protein is encoded by the lacI gene, which acts as a negative regulator of the lactose operon by binding to the operator region in the absence of lactose.

When lactose is present, it binds to the repressor protein, causing it to undergo a conformational change and release from the operator region, allowing the structural genes to be transcribed and translated.

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Which statement best describes an example of how human activities lead to decreased biodiversity?

A. Sustainable farming practices allow the soil to retain nutrients and minerals, increasing its resiliency.

B. Construction requires the removal of organisms to allow space for urban growth, decreasing an ecosystem's resiliency.

C. Sustainable construction practices minimize human impacts on an ecosystem, allowing it to remain stable.

D. The use of renewable resources minimizes the demand for new mines, decreasing the need to disturb ecosystems.​

Answers

Answer: B

Explanation:

It is the only option that describes a negative effect on the ecosystem due to humans.

Are you in favor of OR against human genetic editing? Do you believe that there are appropriate uses, BUT limitations for human genetic editing? Who should determine the uses, if any, of human genetic editing?

Answers

The majority of people are in favor of human genetic editing as long as it is done responsibly with appropriate limitations. The uses of human genetic editing should be determined by a panel of experts, such as geneticists and medical professionals, who are familiar with the ethical implications and potential risks of this technology.


What Is Human Genetic Editing?

Human genetic editing, also known as gene editing, is the process of altering an individual's DNA in order to prevent or treat disease. While there are potential benefits to this technology, such as the ability to cure genetic disorders, there are also ethical concerns about its use. Some people believe that there should be limitations on the use of gene editing, particularly when it comes to editing the DNA of embryos or making changes that could be passed down to future generations. There is also debate about who should determine the appropriate uses of gene editing. Some argue that it should be left up to individual patients and their doctors, while others believe that there should be government regulations in place. Ultimately, the use of human genetic editing is a complex and controversial issue that will likely continue to be debated in the years to come.

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Describe the importance of Haworth and Fischer projections on
sugars like pentoses and hexoses?

Answers

Haworth and Fischer projections are important in understanding the structure and properties of sugars like pentoses and hexoses because they provide a visual representation of the molecules.

Fischer projections are a way to show the arrangement of atoms in a molecule in two dimensions. This is particularly useful for showing the stereochemistry of a molecule, or the arrangement of atoms in space. Fischer projections are often used to depict the structure of sugars, including pentoses and hexoses, because they can show the arrangement of the hydroxyl groups and the location of the carbonyl group in the molecule.
Haworth projections are a way to depict the cyclic structure of sugars in three dimensions. This is important because many sugars, including pentoses and hexoses, exist in a cyclic form in nature. The Haworth projection can show the arrangement of atoms in the ring structure and the location of the hydroxyl groups.
Both Haworth and Fischer projections are important tools for understanding the structure and properties of sugars. By providing a visual representation of the molecules, these projections can help scientists and students better understand the behavior of these important biological molecules.

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ven what you have learned about tumor suppressors and proto-oncogenes, edict whether the following genes are likely to be tumor suppressors or protoncogenes.
An inhibitory protein ________ Ras is likely to be a __________
The RTK in the MAP kinase pathway is likely to be a ______ Protein A is a transcription factor that normally activates the expression of genes needed for S-phase. The inhibitor of protein A is likely to be a ______

Answers

An inhibitory protein that inhibits Ras is likely to be a tumor suppressor.
The RTK in the MAP kinase pathway is likely to be a proto-oncogene Protein A is a transcription factor that normally activates the expression of genes needed for S-phase.
The inhibitor of protein A is likely to be a tumor suppressor.

Given what you have learned about tumor suppressors and proto-oncogenes, it is likely that an inhibitory protein that inhibits Ras is a tumor suppressor, as it prevents the activation of the MAP kinase pathway which can lead to cell proliferation and potentially cancer.

The RTK in the MAP kinase pathway is likely to be a proto-oncogene, as it is involved in the activation of the pathway and can lead to cell proliferation when activated. The inhibitor of protein A, which normally activates the expression of genes needed for S-phase, is likely to be a tumor suppressor, as it prevents the activation of genes that can lead to cell proliferation and potentially cancer.

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The "cohesion" in cohesion-tension theory refers to cohesion of
water molecules in which cells?
mesophyll
bundle sheath
tracheids and vessel elements
root cortex
all of the above

Answers

The "cohesion" refers to the cohesion of water molecules in tracheids and vessel elements.

Cohesion in plants

Cohesion is the force that holds water molecules together. In the case of plants, this force is important for the movement of water from the roots to the leaves. The cohesion-tension theory explains how water is able to move upwards against the force of gravity. The theory states that the cohesion of water molecules in the tracheids and vessel elements creates a continuous column of water that can be pulled upwards by the tension created by transpiration (the loss of water from the leaves). The cohesion of the water molecules allows for this upward movement without the column of water breaking.

Therefore, the correct answer to the question is tracheids and vessel elements.

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Cells in G2 stage of the cell cycle have ______ as cells of the
same species in the G1stage.

Answers

The cells in the G2 stage of the cell cycle have twice as much DNA as cells of the same species in the G1 stage.

This is because the G2 phase is the second gap phase that takes place after the synthesis phase (S) and before the mitosis phase (M) in the cell cycle. The cell cycle is a series of events that takes place in a cell that leads to its division and duplication. The cell cycle is made up of four phases: Gap 1 (G1), Synthesis (S), Gap 2 (G2), and Mitosis (M).

Gap 1 (G1): This phase follows cell division and involves the growth of the cell, during which the cell synthesizes new proteins and organelles in preparation for DNA replication.

Synthesis (S): This phase is responsible for DNA synthesis and replication.

Gap 2 (G2): During this phase, the cell continues to grow and synthesize proteins, but it also checks for errors and DNA damage.

Mitosis (M): This phase is the actual cell division, in which the cell's nucleus divides into two, followed by cytokinesis or the division of the cell's cytoplasm. The cells in the G2 stage of the cell cycle have twice as much DNA as cells of the same species in the G1 stage.

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Bisphenol-A (BPA) is a chemical that is present in many diverse products, including canned food and reusable water bottles. Because animal experiments suggest that BPA may be an endocrine disruptor, a group of pediatricians decided to conduct a case-control study on BPA exposure and precocious (early) puberty in girls. 200 cases with precocious puberty and 200 controls were identified and enrolled from among patients at a children’s clinic. 60 cases and 20 controls had high urinary BPA levels; the remainder had normal urinary BPA levels.
a. Set up the 2x2 table using these data. (2 points)
High BPA levels Early puberty
Yes No Total
Yes
No
Total
b. Use these data to calculate the odds ratio for the association between BPA levels and early puberty. (2 points)
c. State in words your interpretation of this odds ratio. (1 point)

Answers

The table (see the attachment) shows the distribution of high and normal urinary Bisphenol-A (BPA) levels among girls with and without precocious puberty in a case-control study (Question a)

The Answer to Question B and C

Question B: the correct value for the odds ratio is 3.857, which is obtained by dividing the odds of having high BPA levels in cases (60/20) by the odds of having high BPA levels in controls (140/180). Therefore, the correct calculation for the odds ratio is:

Odds ratio = (60/20) / (140/180) Odds ratio = 3.857

Question C: Girls with high urinary BPA levels had 3.857 times the odds of developing precocious puberty compared to those with normal BPA levels. This suggests a potential association between BPA exposure and early puberty in girls, although further research is needed to establish causality and rule out other confounding factors.

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Discuss the following class of reaction that happens inside a
cell with the help of an example: Class-I, Class-II, Class-III

Answers

Class-I reactions are those that involve the transfer of electrons from one molecule to another.

An example of this type of reaction is the reduction of oxygen to water during cellular respiration.

Class-II reactions are those that involve the transfer of functional groups from one molecule to another. An example of this type of reaction is the transfer of a phosphate group from ATP to another molecule during energy metabolism.

Class-III reactions are those that involve the breaking or formation of covalent bonds. An example of this type of reaction is the formation of peptide bonds between amino acids during protein synthesis.

In conclusion, class-I reactions involve the transfer of electrons, class-II reactions involve the transfer of functional groups, and class-III reactions involve the breaking or formation of covalent bonds.

Each of these classes of reactions plays an important role in the biochemical processes that occur within cells.

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Jake stole a suspension of Bacillus anthracis with a known concentration of 7 x 107 spores/mL. He wants to dilute this cell suspension down to 2 x 103 spores/mL. Calculate his dilution factor. Design and draw a practical dilution scheme which limits the volumes used to greater than or equal to 0.1 mL and less than or equal to 10 mL. (hint: use one-step and serial dilutions together to satisfy the given volume restrictions)

Answers

The dilution factor required to dilute the suspension of Bacillus anthracis from 7 x 107 spores/mL to 2 x 103 spores/mL is 3500. To ensure that the volumes used are greater than or equal to 0.1 mL and less than or equal to 10 mL, a one-step and serial dilution scheme can be used.

The first step involves a one-step dilution to reduce the concentration of the suspension from 7 x 107 spores/mL to 2 x 105 spores/mL. This can be done by mixing 0.1 mL of the initial suspension with 9.9 mL of sterile diluent.

The second step is a serial dilution, where 0.1 mL of the diluted suspension from the first step can be transferred to a new tube and mixed with 9.9 mL of sterile diluent. This process can be repeated three more times, until the desired concentration of 2 x 103 spores/mL is reached. This dilution scheme helps reduce the risk of cross-contamination by limiting the volume of the sample used in each step.

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Dilution practice problems 1. 'Calculate \( \mathrm{CFU} / \mathrm{ml} \) of the original undiluted sample. Identify the dilution at each step. 2. A mixture of bacteria was collected and then diluted

Answers

The number of colonies on the plate will be the CFU of the original undiluted sample.

The dilution is an essential step in microbiology and plays an important role in many laboratory experiments.

To calculate CFU/mL of the original undiluted sample, you need to follow the steps given below:Firstly, you need to take a known volume of the original undiluted sample (e.g., 1 mL).Then, transfer it to a test tube containing a known volume of diluent (e.g., 9 mL). The dilution factor will be 1:10, which means you have diluted the original sample ten times (i.e., 1/10).Mix the tube well to ensure that the sample and diluent are thoroughly mixed.After that, you will take a 0.1 mL sample of the 1:10 dilution and transfer it to another test tube containing 9.9 mL of diluent. The dilution factor will be 1:100, which means you have diluted the original sample hundred times (i.e., 1/100).Mix the tube well.After that, you will take a 0.1 mL sample of the 1:100 dilution and transfer it to another test tube containing 9.9 mL of diluent. The dilution factor will be 1:1000, which means you have diluted the original sample thousand times (i.e., 1/1000).Mix the tube well.After that, take an aliquot of the 1:1000 dilution and plate it on agar plates using an appropriate method (e.g., pour plate or spread plate).Incubate the plates under appropriate conditions for the growth of the bacteria.Observe the plates for the presence of colonies after the appropriate time of incubation (e.g., 24 hours for most bacteria).Count the number of colonies that have formed on the plates. The number of colonies on the plate will be the CFU of the original undiluted sample.

A mixture of bacteria was collected and then diluted.The mixture of bacteria can be diluted in different ways to make it suitable for various laboratory experiments or tests. Dilution is a technique that can reduce the concentration of the sample by adding a diluent to it. The diluent can be a buffer, saline solution, or any other suitable solvent. Dilution of the sample helps in decreasing its concentration, which can aid in the detection of bacteria or other microorganisms. It also helps in isolating the individual colonies of bacteria, which can be studied to know more about their characteristics. Dilution can be done in many ways, such as serial dilution, plating dilution, etc. Dilution is an essential step in microbiology and plays an important role in many laboratory experiments.

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Which statement is false about Coroners and Medical Examiners:

Coroner is an elected official.
Medical examiner is an appointed medical doctor.
Coroner can be a medical doctor.
Medical examiner is an elected official.

Answers

The false statement is that Medical examiner is an elected official.

Is a coroner an elected official?

In many jurisdictions, a coroner is an elected or appointed official who is responsible for determining the cause of death in cases where a person has died suddenly or unexpectedly, or where the cause of death is unknown or suspicious. However, the specific requirements and qualifications for coroners can vary depending on the jurisdiction.

The medical examiner on the other hand is not an elected official.

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If you are doing this procedure correctly and find that there is no color change (brown to blue-black) in any of the first four tubes, A. Your saliva mixture is way too strong and you should stop and start over but with a more diluted solution of enzyme B. Your salvia is inactive or too weak, so you know you need to try again but with less diluted saliva C. You should continue to run the assay with drops from the reaction mixture into the wells until you find a color change to blue-black.

Answers

A. Your saliva mixture is way too strong and you should stop and start over but with a more diluted solution of enzyme.

B. Your salvia is inactive or too weak, so you know you need to try again but with less diluted saliva.

C. You should continue to run the assay with drops from the reaction mixture into the wells until you find a color change to blue-black.


To properly run the procedure and find the color change from brown to blue-black, you should start with a diluted solution of your saliva. Drop small amounts of the reaction mixture into the wells and wait for the color to change. If there is no change in the color in any of the first four tubes, it is likely that your saliva mixture is too strong or inactive. In either case, you should start over with a more diluted solution and continue until you find a color change.

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Why are halophytic grasses in salt marshes considered pioneer species? A) Changes in physical environment for future recruitment and growth of other plants. B) Removes all of the nutrients from the soil to slow recruitment of other species. C) Increases quickly in cover and outcompetes other organisms. D) Acts as a primary producer and produces high amounts of detritus for food web

Answers

Halophytic grasses in salt marshes are considered pioneer species because of changes in the physical environment for future recruitment and growth of other plants. Hence, the correct option is (A).

What Is Pioneer Species?

Pioneer species are the first organisms to colonize a previously uninhabited or disturbed area. They play a crucial role in preparing the environment for the arrival of other species by altering the physical conditions and creating a more hospitable environment. In the case of halophytic grasses, they are able to tolerate the high salt levels in salt marshes and help to stabilize the soil, reducing erosion and creating a more suitable habitat for other plant species to grow.

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What specific biological process (i.e.,metabolic pathway) is affected by Alzheimer's disease ?

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The specific biological process that is affected by Alzheimer's disease is the amyloid precursor protein (APP) metabolic pathway.

The APP metabolic pathway is responsible for the production of beta-amyloid, which is a protein that is commonly found in the brains of Alzheimer's patients. In healthy individuals, the APP metabolic pathway functions properly and produces normal levels of beta-amyloid. However, in individuals with Alzheimer's disease, the APP metabolic pathway is disrupted, leading to the overproduction of beta-amyloid.

As a result, the excess beta-amyloid forms plaques in the brain, which disrupts normal brain function and leads to the cognitive decline associated with Alzheimer's disease. Additionally, the disruption of the APP metabolic pathway also leads to the production of abnormal tau proteins, which form tangles in the brain and further contribute to the development of Alzheimer's disease.

Overall, the APP metabolic pathway is a crucial biological process that is affected by Alzheimer's disease, and understanding its role in the development of the disease can help researchers develop new treatments and therapies.

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Gastric emptying is tightly regulated to ensure that chyme enters the duodenum at an appropriate rate. Which of the following events promotes gastric emptying under normal physiological conditions in a healthy person?
Tone of Orad stomach: (INCREASE/DECREASE)
Segmentation contractions in small intestine: (INCREASE/DECREASE)
Tone of Pyloric sphincter: (INCREASE/DECREASE)

Answers

Gastric emptying is tightly regulated to ensure that chyme enters the duodenum at an appropriate rate. Under normal physiological conditions in a healthy person, the tone of the Orad stomach will increase, the segmentation contractions in the small intestine will increase, and the tone of the Pyloric sphincter will decrease in order to promote gastric emptying.


Gastric emptying is the process of moving food from the stomach to the small intestine. It is tightly regulated to ensure that chyme enters the duodenum at an appropriate rate. The following events promote gastric emptying under normal physiological conditions in a healthy person:

1. Tone of Orad stomach: INCREASE
- An increase in the tone of the Orad stomach promotes gastric emptying by increasing the pressure on the food in the stomach, pushing it towards the small intestine.

2. Segmentation contractions in small intestine: INCREASE
- An increase in segmentation contractions in the small intestine promotes gastric emptying by creating a more favorable environment for the chyme to move into the duodenum.

3. Tone of Pyloric sphincter: DECREASE
- A decrease in the tone of the Pyloric sphincter promotes gastric emptying by allowing the chyme to move more easily from the stomach into the small intestine.

Gastric emptying is promoted by an increase in the tone of the Orad stomach, an increase in segmentation contractions in the small intestine, and a decrease in the tone of the Pyloric sphincter.

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A 31 year old woman with thrombosis is given enoxaparin which is a drug that binds antithrombin III what is the effect of enoxaparin on antithrombin III?
a. Increase its activity
b. increase its inhibition of FXIIIa
c. Increase its degradation
d. Destabilize its interaction serine proteases

Answers

Enoxaparin binds to antithrombin III, which increases its activity in inhibiting Factor Xa, thereby reducing the risk of thrombosis. Therefore, the correct answer is a." Increase its activity".

Enoxaparin is a type of anticoagulant drug known as a low molecular weight heparin (LMWH). It works by binding to the protein antithrombin III, which is involved in the process of blood clotting. By binding to antithrombin III, enoxaparin increases its activity, which in turn helps to prevent the formation of blood clots.

This is why enoxaparin is often used to treat or prevent conditions such as thrombosis, where there is a risk of blood clots forming.

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If a cell has a foreign antigen attached to its Class II MHC protein, that is a signal that can be interpreted as which one of the following statements? "I am a normal liver cell" "I am an immune cell" "This antigen is dangerous- get rid of itf" and c b and c

Answers

If a cell has a foreign antigen attached to its Class II MHC protein, that is a signal that can be interpreted as C: "This antigen is dangerous- get rid of it."

This is because Class II MHC proteins are found on the surface of antigen-presenting cells, such as macrophages, dendritic cells, and B cells. These cells are responsible for presenting foreign antigens to T cells, which can then initiate an immune response to get rid of the foreign antigen. Therefore, the presence of a foreign antigen on a Class II MHC protein is a signal that the antigen is potentially dangerous and should be eliminated.

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