1answer.
Ask question
Login Signup
Ask question
All categories
  • English
  • Mathematics
  • Social Studies
  • Business
  • History
  • Health
  • Geography
  • Biology
  • Physics
  • Chemistry
  • Computers and Technology
  • Arts
  • World Languages
  • Spanish
  • French
  • German
  • Advanced Placement (AP)
  • SAT
  • Medicine
  • Law
  • Engineering
Ierofanga [76]
4 years ago
12

Hey im bored sum one let me know when someone needs help.

Advanced Placement (AP)
1 answer:
Igoryamba4 years ago
4 0
Ayoo how are you today
You might be interested in
TIMED HURRY PLEASE( 40 points and a brainlist) Read the excerpt from William Seward’s The Building of the Erie Canal.
Lerok [7]

so we get the points just by reading it and writing something

3 0
3 years ago
Read 2 more answers
For an inferior good, an increase in consumer income will cause
lozanna [386]

Answer:

A. the demand curve to shift to the left

Explanation:

For an inferior good, an increase in consumer income will cause the demand curve to shift to the left

An inferior good is a type of good whose demand falls or decrease as a result of an increase in the income of consumers.

When consumers income increases, they tend to substitute inferior goods for a more expensive good.

An inferior good is more cheaper. Consumers substitute cheap goods for expensive ones when their income increases because they believe expensive goods has better quality than a cheap good.

5 0
3 years ago
*****************PLEASE HELP 40 POINTS***************
Step2247 [10]
The nervous system is composed of billions of specialized cells called neurons. Efficient communication between these cells is crucial to the normal functioning of the central and peripheral nervous systems. In this section we will investigate the way in which the unique morphology and biochemistry of neurons makes such communication possible.

The cell body, or soma, of a neuron is like that of any other cell, containing mitochondria, ribosomes, a nucleus, and other essential organelles. Extending from the cell membrane, however, is a system of dendritic branches which serve as receptor sites for information sent from other neurons. If the dendrites receive a strong enough signal from a neighboring nerve cell, or from several neighboring nerve cells, the resting electrical potential of the receptor cell's membrane becomes depolarized. Regenerating itself, this electrical signal travels down the cell's axon, a specialized extension from the cell body which ranges from a few hundred micrometers in some nerve cells, to over a meter in length in others. This wave of depolarization along the axon is called an action potential. Most axons are covered by myelin, a fatty substance that serves as an insulator and thus greatly enhances the speed of an action potential. In between each sheath of myelin is an exposed portion of the axon called a node of Ranvier. It is in these uninsulated areas that the actual flow of ions along the axon takes place.

The end of the axon branches off into several terminals. Each axon terminal is highly specialized to pass along action potentials to adjacent neurons, or target tissue, in the neural pathway. Some cells communicate this information via electrical synapses. In such cases, the action potential simply travels from one cell to the next through specialized channels, called gap junctions, which connect the two cells.

Most cells, however, communicate via chemical synapses. Such cells are separated by a space called a synaptic cleft and thus cannot transmit action potentials directly. Instead, chemicals called neurotransmitters are used to communicate the signal from one cell to the next. Some neurotransmitters are excitatory and depolarize the next cell, increasing the probability that an action potential will be fired. Others are inhibitory, causing the membrane of the next cell to hyperpolarize, thus decreasing the probability of that the next neuron will fire an action potential.

The process by which this information is communicated is called synaptic transmission and can be broken down into four steps. First, the neurotransmitter must be synthesized and stored in vesicles so that when an action potential arrives at the nerve ending, the cell is ready to pass it along to the next neuron. Next, when an action potential does arrive at the terminal, the neurotransmitter must be quickly and efficiently released from the terminal and into the synaptic cleft. The neurotransmitter must then be recognized by selective receptors on the postsynaptic cell so that it can pass along the signal and initiate another action potential. Or, in some cases, the receptors act to block the signals of other neurons also connecting to that postsynaptic neuron. After its recognition by the receptor, the neurotransmitter must be inactivated so that it does not continually occupy the receptor sites of the postsynaptic cell. Inactivation of the neurotransmitter avoids constant stimulation of the postsynaptic cell, while at the same time freeing up the receptor sites so that they can receive additional neurotransmitter molecules, should another action potential arrive.

Most neurotransmitters are specific for the kind of information that they are used to convey. As a result, a certain neurotransmitter may be more highly concentrated in one area of the brain than it is in another. In addition, the same neurotransmitter may elicit a variety of different responses based on the type of tissue being targeted and which other neurotransmitters, if any, are co-released. The integral role of neurotransmitters on the normal functioning of the brain makes it clear to see how an imbalance in any one of these chemicals could very possibly have serious clinical implications for an individual. Whether due to genetics, drug use, the aging process, or other various causes, biological disfunction at any of the four steps of synaptic transmission often leads to such imbalances and is the ultimately source of conditions such as schizophrenia, Parkinson's disease, and Alzheimer's disease. The causes and characteristics of these conditions and others will be studied more closely are as we focus specifically on the four steps of synaptic transmission, and trace the actions of several important neurotransmitters.
5 0
3 years ago
The ideological subsystem of a culture is known as its _________.
Angelina_Jolie [31]
The ideological subsystem of a culture is known as its _________.A) mentifacts
B) sociofacts
C) artifacts
D) justdafacts
E) All of the above
b
4 0
3 years ago
Read 2 more answers
Free points + brainliest !!! only for correct answer
RSB [31]

Answer:

D. Kinetic Energy

Explanation:

When a vehicle—or any other object—is in motion, it has kinetic energy. Kinetic energy (KE) is given by the equation KE = 1/2mv², where m is the object's mass and v is the object's velocity. As an object in motion becomes heavier, its kinetic energy increases proportionally: double the mass and you double the kinetic energy.

4 0
3 years ago
Read 2 more answers
Other questions:
  • Please Help!!!! 1. What is the main purpose of an interview? (1 point)
    9·2 answers
  • What is the volume of the right triangular prism?
    14·1 answer
  • What three things must happen prior to being persuaded
    9·1 answer
  • How do compare and contrast graphic organizers help you synthesize information
    5·2 answers
  • Economic development results in low agricultural density because
    6·2 answers
  • Anu-ano ang mga lalawigang sakop ng monopoly ng tabako¿
    6·1 answer
  • CFCs have been largely replaced with HFCs in refrigerators and in home and
    10·1 answer
  • Is it possible to save the ozone layer? Can the damage be reversed?
    15·2 answers
  • What important documents are needed for jobs searches, housing and benefits?
    13·1 answer
  • Explain how neonicotinoid use relates<br> to larger environmental principles
    9·2 answers
Add answer
Login
Not registered? Fast signup
Signup
Login Signup
Ask question!